diff --git a/Untitled.m b/Untitled.m new file mode 100644 index 0000000..75ccd66 --- /dev/null +++ b/Untitled.m @@ -0,0 +1,13 @@ +1310 & 1550 + +c1= [0,1.61482486874064e-13,2.12799011750962e-13,2.41394344011323e-13,3.33808530344467e-13,3.33500010134680e-13,8.61242244085060e-13,1.28665583690878e-12,1.42636288947139e-12,2.07852687968410e-12,2.14801580716704e-12,2.14621692793392e-12,2.27564151241760e-12,2.29394064832009e-12,2.30026230579460e-12,2.64562416428374e-12,2.69690471147596e-12,3.15525540871802e-12,3.83953134804374e-12,3.89560667691090e-12,4.18723676270278e-12,4.26448560031409e-12,4.30719612441198e-12,4.39728133314245e-12,4.40743817102650e-12,4.41363194356490e-12,5.02351684719302e-12,5.23997384625533e-12,5.50701904882176e-12,6.20962343402480e-12,6.22987261099549e-12,6.26975102581784e-12,6.36513055314661e-12,6.42208529495365e-12,6.48148413392605e-12,6.67097789388911e-12,6.70090527965840e-12,7.37567055595332e-12,7.82127891366256e-12,7.91318228046313e-12,8.37327767189067e-12,8.38771011338391e-12,8.39369217317479e-12,8.50992207081992e-12,8.51366922193141e-12,8.55935626281336e-12,9.08930609397506e-12,9.19658385685518e-12,9.68527635735187e-12,1.02674920446932e-11,1.02787756259879e-11] +c2= [0,1.94273347803102e-14,1.87500490470211e-14,2.33774920773370e-14,3.55044893444582e-14,3.54139127832416e-14,9.01807651597737e-14,1.35362027710150e-13,1.52535647846142e-13,2.18798022038262e-13,2.28366314926914e-13,2.27611561439293e-13,2.43707836404902e-13,2.41921040419164e-13,2.43265149939295e-13,2.80833955349065e-13,2.88284038463705e-13,3.36566737985195e-13,4.05774258570837e-13,4.13791669230902e-13,4.46175657167444e-13,4.56621302307953e-13,4.55591109082781e-13,4.67462503097529e-13,4.69454575125357e-13,4.70775839024229e-13,5.33150331579293e-13,5.58138466091541e-13,5.88124695953379e-13,6.59011448372637e-13,6.62508534875732e-13,6.68573916685589e-13,6.81025552106030e-13,6.80594286755156e-13,6.89000668652314e-13,7.11281889148646e-13,7.16083690982197e-13,7.84423757063775e-13,8.31511456156572e-13,8.43582784149797e-13,8.92032797890905e-13,8.94688325588769e-13,8.92846274264504e-13,9.07545985756750e-13,9.05763897035995e-13,9.12541732747340e-13,9.67519764862191e-13,9.81261003937951e-13,1.03239185104289e-12,1.09221811215822e-12,1.09438987318130e-12] +p1= [0,0.0110171195518265,0.00812623424494349,0.00819990530973454,0.0105713771454885,0.0105713771434812,0.243552511679730,0.405801756317468,0.415816892095372,0.908472658174832,0.910423995749640,0.910423818113935,0.921576744415949,0.920802200164854,0.920803043144571,1.06619578068994,1.06707902639150,1.37629272763781,2.21605714658929,2.21806615963144,2.38939427209135,2.39480560034605,2.38729954609074,2.39562611483264,2.39563574245938,2.39563737858368,3.31164174507830,3.43080561293542,3.63760549930117,4.98082615891459,4.98105280625430,4.98289423888171,5.00518762020531,4.97511144644211,4.98101325175625,5.11540135966528,5.11620118596279,6.34482458251298,7.34691553256984,7.38086257977877,8.45862170439967,8.45878324876773,8.45734146355136,8.53442823533377,8.53357770831650,8.53949021968210,9.35466472764296,9.42685819196949,10.2334720417020,9.29420773994546,9.29428947243960] +p2= [0,1.08876090163498e-05,1.46011884614790e-05,1.47994627842493e-05,1.79778842467287e-05,1.79778844389221e-05,0.000140231170879945,0.000219670257744334,0.000227564322301426,0.000400314908418301,0.000401963685864234,0.000401964674663927,0.000408592104300826,0.000409379965062980,0.000409383278614295,0.000460227994249685,0.000461040672790631,0.000547260816295970,0.000712058565349347,0.000713053981211099,0.000747401043532999,0.000749473878681900,0.000752185866094754,0.000755112384584509,0.000755125342020058,0.000755128459713983,0.000875689646448934,0.000894071654847695,0.000921578988539716,0.00103426313812744,0.00103434513415418,0.00103478468101492,0.00103800738197156,0.00104212507724180,0.00104324247170439,0.00105667997592564,0.00105689895671089,0.00113260811243862,0.00118209225859697,0.00118498391081048,0.00122892143974294,0.00122895507170018,0.00122915568645470,0.00123382588298495,0.00123395627875181,0.00123455283042778,0.00126696139004084,0.00127086594274557,0.00129896491911936,0.00129930546338922,0.00129932272184823] +bias= [1.20687753883735,-0.916125631699111,0.438951507652081,0.882104601149073,-0.0124476489924152,2.28905602762798,2.04131578631506,1.11356648044584,2.55990176362186,0.748581736068777,-0.115571995253921,1.06701076140600,-0.619836252701880,0.157957370806974,1.82592171879253,0.626226756310116,2.12402673198734,2.62553233023885,0.660253593588904,1.66704765846693,0.795905676892591,-0.850972157772215,0.869348562703181,0.222014553169939,0.155586228670755,2.47106238691760,1.41788469248285,1.58951250311236,2.66235203656177,0.352617994975312,0.538546856255862,0.898141866775971,-0.955952326989885,0.683022415607648,1.31821794720619,0.451578523160691,2.60636052710749,2.09248226217062,0.879338622577838,2.12843034242249,0.282249392639314,-0.441262843285919,1.00453393035054,-0.395586147183687,0.584538731950554,2.29429205010941,0.960116651120547,2.19777798839787,2.41138894122015,0.238807615472093] +o1= [0,8.83051567131176e-15,6.51339386045120e-15,6.57244318719213e-15,8.47324122348356e-15,8.47324122187464e-15,1.95213845239488e-13,3.25260949720124e-13,3.33288348626077e-13,7.28165107697419e-13,7.29729156898602e-13,7.29729014518838e-13,7.38668382928850e-13,7.38047565017667e-13,7.38048240688432e-13,8.54584404369836e-13,8.55292349397806e-13,1.10313539238150e-12,1.77622901062509e-12,1.77783928825429e-12,1.91516334785957e-12,1.91950067203318e-12,1.91348436900412e-12,1.92015833631633e-12,1.92016605311639e-12,1.92016736451373e-12,2.65436933765831e-12,2.74988236151326e-12,2.91563799562322e-12,3.99226524187830e-12,3.99244690577654e-12,3.99392286322599e-12,4.01179160398155e-12,3.98768474714845e-12,3.99241520178956e-12,4.10013086080061e-12,4.10077194294747e-12,5.08554642109843e-12,5.88874909099138e-12,5.91595855631152e-12,6.77981128978632e-12,6.77994077191340e-12,6.77878514254149e-12,6.84057224969534e-12,6.83989052956699e-12,6.84462956539438e-12,7.49801371299663e-12,7.55587870348736e-12,8.20240125479968e-12,7.44955582209405e-12] +o2= [0,7.37547707559218e-18,9.89112766745397e-18,1.00254425312661e-17,1.21785667477846e-17,1.21785668779801e-17,9.49953093057737e-17,1.48808884278427e-16,1.54156476397748e-16,2.71181066993056e-16,2.72297980746752e-16,2.72298650578802e-16,2.76788199687670e-16,2.77321911816871e-16,2.77324156480665e-16,3.11767350943350e-16,3.12317875116249e-16,3.70725069103740e-16,4.82362253946355e-16,4.83036567917220e-16,5.06303932715927e-16,5.07708111365183e-16,5.09545264128729e-16,5.11527744395982e-16,5.11536522013613e-16,5.11538633999819e-16,5.93209115336403e-16,6.05661443606532e-16,6.24295443849515e-16,7.00629867763784e-16,7.00685413459320e-16,7.00983171010143e-16,7.03166291013029e-16,7.05955697486415e-16,7.06712642122364e-16,7.15815467562567e-16,7.15963809384830e-16,7.67250656813297e-16,8.00772175178634e-16,8.02731036355527e-16,8.32495168858160e-16,8.32517951796935e-16,8.32653852114514e-16,8.35817533635004e-16,8.35905866251267e-16,8.36309981902731e-16,8.58264167447065e-16,8.60909187021235e-16,8.79943977467997e-16,8.80174668747581e-16] + +for i=1:length(p1) +np1(i)=sqrt((2*beta*nsp*p1(i)*rand(1))/(0.1*taup1)); +end \ No newline at end of file diff --git a/b.PNG b/b.PNG new file mode 100644 index 0000000..db67253 Binary files /dev/null and b/b.PNG differ diff --git a/beta.PNG b/beta.PNG new file mode 100644 index 0000000..081dcca Binary files /dev/null and b/beta.PNG differ diff --git a/botr.PNG b/botr.PNG new file mode 100644 index 0000000..c85cd58 Binary files /dev/null and b/botr.PNG differ diff --git a/carrier1.m b/carrier1.m new file mode 100644 index 0000000..f795908 --- /dev/null +++ b/carrier1.m @@ -0,0 +1,33 @@ +function c1=carrier1(t, bias,c1,p1,p2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +% g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +% g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +c1=(bias/(v1*q)) - (c1/taue) - ((gamma_1*p1 + gamma_2*p2)*(g1/v1)); +end \ No newline at end of file diff --git a/carrier11.m b/carrier11.m new file mode 100644 index 0000000..799ab90 --- /dev/null +++ b/carrier11.m @@ -0,0 +1,36 @@ +function c1=carrier11(t, bias,c1,p1,p2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +eps11 =2e-7; %self-gain saturation coefficient mode 1 +eps22 =2e-7; %self-gain saturation coefficient mode 2 +eps12 =0.5e-7; %cross- gain saturation coefficient mode 1 +eps21 =0.5e-7; %cross- gain saturation coefficient mode 2 + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +% g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-(p1*eps11)-(eps12*p2))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +% g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +c1=(bias/(v1*q)) - (c1/taue) - ((gamma_1*p1 + gamma_2*p2)*(g1/v1)); +end \ No newline at end of file diff --git a/carrier2.m b/carrier2.m new file mode 100644 index 0000000..e2947c1 --- /dev/null +++ b/carrier2.m @@ -0,0 +1,33 @@ +function c2=carrier2(t, bias,c2,p1,p2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +% g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +% g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +c2=(bias/(v2*q)) - (c2/taue) - (((1-gamma_1)*p1 + (1-gamma_2)*p2)*(g2/v2)); +end \ No newline at end of file diff --git a/carrier22.m b/carrier22.m new file mode 100644 index 0000000..7e03632 --- /dev/null +++ b/carrier22.m @@ -0,0 +1,37 @@ +function c2=carrier22(t, bias,c2,p1,p2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +eps11 =2e-7; %self-gain saturation coefficient mode 1 +eps22 =2e-7; %self-gain saturation coefficient mode 2 +eps12 =0.5e-7; %cross- gain saturation coefficient mode 1 +eps21 =0.5e-7; %cross- gain saturation coefficient mode 2 + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +% g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +% g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-(p2*eps22)-(eps21*p1))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +c2=(bias/(v2*q)) - (c2/taue) - (((1-gamma_1)*p1 + (1-gamma_2)*p2)*(g2/v2)); +end \ No newline at end of file diff --git a/eps.PNG b/eps.PNG new file mode 100644 index 0000000..724c47b Binary files /dev/null and b/eps.PNG differ diff --git a/finalgui.fig b/finalgui.fig new file mode 100644 index 0000000..d5b3dbd Binary files /dev/null and b/finalgui.fig differ diff --git a/finalgui.m b/finalgui.m new file mode 100644 index 0000000..b291763 --- /dev/null +++ b/finalgui.m @@ -0,0 +1,1296 @@ +function varargout = finalgui(varargin) +% FINALGUI MATLAB code for finalgui.fig +% FINALGUI, by itself, creates a new FINALGUI or raises the existing +% singleton*. +% +% H = FINALGUI returns the handle to a new FINALGUI or the handle to +% the existing singleton*. +% +% FINALGUI('CALLBACK',hObject,eventData,handles,...) calls the local +% function named CALLBACK in FINALGUI.M with the given input arguments. +% +% FINALGUI('Property','Value',...) creates a new FINALGUI or raises the +% existing singleton*. Starting from the left, property value pairs are +% applied to the GUI before finalgui_OpeningFcn gets called. An +% unrecognized property name or invalid value makes property application +% stop. All inputs are passed to finalgui_OpeningFcn via varargin. +% +% *See GUI Options on GUIDE's Tools menu. Choose "GUI allows only one +% instance to run (singleton)". +% +% See also: GUIDE, GUIDATA, GUIHANDLES + +% Edit the above text to modify the response to help finalgui + +% Last Modified by GUIDE v2.5 05-Jun-2017 03:05:32 + +% Begin initialization code - DO NOT EDIT +gui_Singleton = 1; +gui_State = struct('gui_Name', mfilename, ... + 'gui_Singleton', gui_Singleton, ... + 'gui_OpeningFcn', @finalgui_OpeningFcn, ... + 'gui_OutputFcn', @finalgui_OutputFcn, ... + 'gui_LayoutFcn', [] , ... + 'gui_Callback', []); +if nargin && ischar(varargin{1}) + gui_State.gui_Callback = str2func(varargin{1}); +end + +if nargout + [varargout{1:nargout}] = gui_mainfcn(gui_State, varargin{:}); +else + gui_mainfcn(gui_State, varargin{:}); +end +% End initialization code - DO NOT EDIT + + +% --- Executes just before finalgui is made visible. +function finalgui_OpeningFcn(hObject, eventdata, handles, varargin) +% This function has no output args, see OutputFcn. +% hObject handle to figure +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) +% varargin command line arguments to finalgui (see VARARGIN) + +% Choose default command line output for finalgui +handles.output = hObject; + +% Update handles structure +guidata(hObject, handles); + +% UIWAIT makes finalgui wait for user response (see UIRESUME) +% uiwait(handles.figure1); + + +% --- Outputs from this function are returned to the command line. +function varargout = finalgui_OutputFcn(hObject, eventdata, handles) +% varargout cell array for returning output args (see VARARGOUT); +% hObject handle to figure +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Get default command line output from handles structure +varargout{1} = handles.output; + + +% --- Executes on button press in pushbutton19. +function pushbutton19_Callback(hObject, eventdata, handles) +% hObject handle to pushbutton19 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in epsilon21. +function epsilon21_Callback(hObject, eventdata, handles) +a=imread('eps.png'); +figure(1);imshow(a); +% hObject handle to epsilon21 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in pushbutton13. +function pushbutton13_Callback(hObject, eventdata, handles) +%without noise LP01 +wnan_o1= [0,0,2.58000000000000e-22,5.89000000000000e-22,7.89000000000000e-22,8.72000000000000e-22,9.77000000000000e-22,1.35000000000000e-21,2.01000000000000e-21,2.25000000000000e-21,2.28000000000000e-21,2.33000000000000e-21,2.79000000000000e-21,4.00000000000000e-21,4.35000000000000e-21,4.36000000000000e-21,4.38000000000000e-21,4.87000000000000e-21,6.94000000000000e-21,7.52000000000000e-21,7.52000000000000e-21,7.53000000000000e-21,7.98000000000000e-21,1.13000000000000e-20,1.23000000000000e-20,1.23000000000000e-20,1.23000000000000e-20,1.27000000000000e-20,1.76000000000000e-20,1.96000000000000e-20,1.96000000000000e-20,1.96000000000000e-20,1.98000000000000e-20,2.68000000000000e-20,3.06000000000000e-20,3.06000000000000e-20,3.06000000000000e-20,3.07000000000000e-20,4.00000000000000e-20,4.75000000000000e-20,4.75000000000000e-20,4.75000000000000e-20,4.75000000000000e-20,5.95000000000000e-20,7.37000000000000e-20,7.38000000000000e-20,7.38000000000000e-20,7.38000000000000e-20,8.90000000000000e-20,1.15000000000000e-19,1.16000000000000e-19,1.15000000000000e-19,1.15000000000000e-19,1.34000000000000e-19,1.80000000000000e-19,1.81000000000000e-19,1.80000000000000e-19,1.80000000000000e-19,2.03000000000000e-19,2.64000000000000e-19,2.67000000000000e-19,2.67000000000000e-19,2.67000000000000e-19,2.92000000000000e-19,3.08000000000000e-19,3.19000000000000e-19,3.19000000000000e-19,3.19000000000000e-19,3.39000000000000e-19,2.58000000000000e-19,2.74000000000000e-19,2.74000000000000e-19,2.74000000000000e-19,2.84000000000000e-19,2.65000000000000e-19,2.93000000000000e-19,2.93000000000000e-19,2.93000000000000e-19,2.98000000000000e-19,2.54000000000000e-19,2.94000000000000e-19,2.94000000000000e-19,2.93000000000000e-19,2.95000000000000e-19,2.69000000000000e-19,3.22000000000000e-19,3.22000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,2.91000000000000e-19,3.42000000000000e-19,3.42000000000000e-19,3.40000000000000e-19,3.40000000000000e-19,3.32000000000000e-19,3.38000000000000e-19,3.38000000000000e-19,3.36000000000000e-19,3.36000000000000e-19,3.68000000000000e-19,2.66000000000000e-19,2.66000000000000e-19,2.65000000000000e-19,2.65000000000000e-19,3.18000000000000e-19,2.50000000000000e-19,2.51000000000000e-19,2.50000000000000e-19,2.50000000000000e-19,2.93000000000000e-19,2.42000000000000e-19,2.46000000000000e-19,2.45000000000000e-19,2.45000000000000e-19,2.75000000000000e-19,2.50000000000000e-19,2.58000000000000e-19,2.58000000000000e-19,2.58000000000000e-19,2.76000000000000e-19,2.62000000000000e-19,2.78000000000000e-19,2.78000000000000e-19,2.78000000000000e-19,2.89000000000000e-19,2.85000000000000e-19,3.12000000000000e-19,3.12000000000000e-19,3.12000000000000e-19,3.18000000000000e-19,3.19000000000000e-19,3.58000000000000e-19,3.58000000000000e-19,3.58000000000000e-19,3.60000000000000e-19,3.67000000000000e-19,4.14000000000000e-19,4.14000000000000e-19,4.14000000000000e-19,4.15000000000000e-19,4.30000000000000e-19,4.75000000000000e-19,4.75000000000000e-19,4.75000000000000e-19,4.75000000000000e-19,5.02000000000000e-19,5.29000000000000e-19,5.29000000000000e-19,5.29000000000000e-19,5.29000000000000e-19,5.67000000000000e-19,5.71000000000000e-19,5.73000000000000e-19,5.73000000000000e-19,5.73000000000000e-19,6.14000000000000e-19,6.11000000000000e-19,6.16000000000000e-19,6.16000000000000e-19,6.16000000000000e-19,6.53000000000000e-19,6.59000000000000e-19,6.69000000000000e-19,6.69000000000000e-19,6.69000000000000e-19,6.98000000000000e-19,7.17000000000000e-19,7.33000000000000e-19,7.33000000000000e-19,7.33000000000000e-19,7.55000000000000e-19,7.85000000000000e-19,8.05000000000000e-19,8.05000000000000e-19,8.05000000000000e-19,8.22000000000000e-19,8.57000000000000e-19,8.80000000000000e-19,8.81000000000000e-19,8.82000000000000e-19,8.96000000000000e-19,9.29000000000000e-19,9.53000000000000e-19,9.57000000000000e-19,9.59000000000000e-19,9.71000000000000e-19,9.98000000000000e-19,1.02000000000000e-18,1.03000000000000e-18,1.03000000000000e-18,1.05000000000000e-18,1.07000000000000e-18,1.08000000000000e-18,1.10000000000000e-18,1.11000000000000e-18,1.13000000000000e-18,1.14000000000000e-18,1.15000000000000e-18,1.17000000000000e-18,1.19000000000000e-18,1.21000000000000e-18,1.22000000000000e-18,1.23000000000000e-18,1.25000000000000e-18,1.28000000000000e-18,1.30000000000000e-18,1.31000000000000e-18,1.31000000000000e-18,1.33000000000000e-18,1.34000000000000e-18,1.36000000000000e-18,1.37000000000000e-18,1.37000000000000e-18,1.39000000000000e-18,1.32000000000000e-18,1.33000000000000e-18,1.34000000000000e-18,1.34000000000000e-18,1.35000000000000e-18,1.21000000000000e-18,1.18000000000000e-18,1.18000000000000e-18,1.18000000000000e-18,1.19000000000000e-18,1.08000000000000e-18,9.87000000000000e-19,9.91000000000000e-19,9.91000000000000e-19,9.92000000000000e-19,9.57000000000000e-19,7.77000000000000e-19,7.82000000000000e-19,7.82000000000000e-19,7.82000000000000e-19,8.07000000000000e-19,5.85000000000000e-19,5.91000000000000e-19,5.91000000000000e-19,5.91000000000000e-19,6.31000000000000e-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+twnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +axes(handles.axes3) +cla; +plot(twnan,wnan_o1,'LineWidth',2,'displayname','Output Power LP01 withoue Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to pushbutton13 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in pushbutton14. +function pushbutton14_Callback(hObject, eventdata, handles) +%with noise LP01 +nan_o1= 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19,3.17000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,1.83000000000000e-19,1.94000000000000e-19,1.94000000000000e-19,1.94000000000000e-19,1.96000000000000e-19,2.05000000000000e-19,2.05000000000000e-19]; +tnan= [0,1.00000000000000e-14,2.00000000000000e-14,3.00000000000000e-14,4.00000000000000e-14,5.00000000000000e-14,6.00000000000000e-14,7.00000000000000e-14,8.00000000000000e-14,9.00000000000000e-14,1.00000000000000e-13,1.10000000000000e-13,1.20000000000000e-13,1.30000000000000e-13,1.40000000000000e-13,1.50000000000000e-13,1.60000000000000e-13,1.70000000000000e-13,1.80000000000000e-13,1.90000000000000e-13,2.00000000000000e-13,2.10000000000000e-13,2.20000000000000e-13,2.30000000000000e-13,2.40000000000000e-13,2.50000000000000e-13,2.60000000000000e-13,2.70000000000000e-13,2.80000000000000e-13,2.90000000000000e-13,3.00000000000000e-13,3.10000000000000e-13,3.20000000000000e-13,3.30000000000000e-13,3.40000000000000e-13,3.50000000000000e-13,3.60000000000000e-13,3.70000000000000e-13,3.80000000000000e-13,3.90000000000000e-13,4.00000000000000e-13,4.10000000000000e-13,4.20000000000000e-13,4.30000000000000e-13,4.40000000000000e-13,4.50000000000000e-13,4.60000000000000e-13,4.70000000000000e-13,4.80000000000000e-13,4.90000000000000e-13,5.00000000000000e-13,5.10000000000000e-13,5.20000000000000e-13,5.30000000000000e-13,5.40000000000000e-13,5.50000000000000e-13,5.60000000000000e-13,5.70000000000000e-13,5.80000000000000e-13,5.90000000000000e-13,6.00000000000000e-13,6.10000000000000e-13,6.20000000000000e-13,6.29999999999999e-13,6.39999999999999e-13,6.49999999999999e-13,6.59999999999999e-13,6.69999999999999e-13,6.79999999999999e-13,6.89999999999999e-13,6.99999999999999e-13,7.09999999999999e-13,7.19999999999999e-13,7.29999999999999e-13,7.39999999999999e-13,7.49999999999999e-13,7.59999999999999e-13,7.69999999999999e-13,7.79999999999999e-13,7.89999999999999e-13,7.99999999999999e-13,8.09999999999999e-13,8.19999999999999e-13,8.29999999999999e-13,8.39999999999999e-13,8.49999999999999e-13,8.59999999999999e-13,8.69999999999998e-13,8.79999999999998e-13,8.89999999999998e-13,8.99999999999998e-13,9.09999999999998e-13,9.19999999999998e-13,9.29999999999998e-13,9.39999999999998e-13,9.49999999999998e-13,9.59999999999998e-13,9.69999999999998e-13,9.79999999999998e-13,9.89999999999998e-13,9.99999999999998e-13,1.01000000000000e-12,1.02000000000000e-12,1.03000000000000e-12,1.04000000000000e-12,1.05000000000000e-12,1.06000000000000e-12,1.07000000000000e-12,1.08000000000000e-12,1.09000000000000e-12,1.10000000000000e-12,1.11000000000000e-12,1.12000000000000e-12,1.13000000000000e-12,1.14000000000000e-12,1.15000000000000e-12,1.16000000000000e-12,1.17000000000000e-12,1.18000000000000e-12,1.19000000000000e-12,1.20000000000000e-12,1.21000000000000e-12,1.22000000000000e-12,1.23000000000000e-12,1.24000000000000e-12,1.25000000000000e-12,1.26000000000000e-12,1.27000000000000e-12,1.28000000000000e-12,1.29000000000000e-12,1.30000000000000e-12,1.31000000000000e-12,1.32000000000000e-12,1.33000000000000e-12,1.34000000000000e-12,1.35000000000000e-12,1.36000000000000e-12,1.37000000000000e-12,1.38000000000000e-12,1.39000000000000e-12,1.40000000000000e-12,1.41000000000000e-12,1.42000000000000e-12,1.43000000000000e-12,1.44000000000000e-12,1.45000000000000e-12,1.46000000000000e-12,1.47000000000000e-12,1.48000000000000e-12,1.49000000000000e-12,1.50000000000000e-12,1.51000000000000e-12,1.52000000000000e-12,1.53000000000000e-12,1.54000000000000e-12,1.55000000000000e-12,1.56000000000000e-12,1.57000000000000e-12,1.58000000000000e-12,1.59000000000000e-12,1.60000000000000e-12,1.61000000000000e-12,1.62000000000000e-12,1.63000000000000e-12,1.64000000000000e-12,1.65000000000000e-12,1.66000000000000e-12,1.67000000000000e-12,1.68000000000000e-12,1.69000000000000e-12,1.70000000000000e-12,1.71000000000000e-12,1.71999999999999e-12,1.72999999999999e-12,1.73999999999999e-12,1.74999999999999e-12,1.75999999999999e-12,1.76999999999999e-12,1.77999999999999e-12,1.78999999999999e-12,1.79999999999999e-12,1.80999999999999e-12,1.81999999999999e-12,1.83000000000000e-12,1.84000000000000e-12,1.85000000000000e-12,1.86000000000000e-12,1.87000000000000e-12,1.88000000000000e-12,1.89000000000000e-12,1.90000000000000e-12,1.91000000000000e-12,1.92000000000000e-12,1.93000000000000e-12,1.94000000000000e-12,1.95000000000000e-12,1.96000000000000e-12,1.97000000000000e-12,1.98000000000000e-12,1.99000000000000e-12,2.00000000000000e-12,2.01000000000000e-12,2.02000000000000e-12,2.03000000000000e-12,2.04000000000000e-12,2.05000000000000e-12,2.06000000000000e-12,2.07000000000000e-12,2.08000000000000e-12,2.09000000000000e-12,2.10000000000000e-12,2.11000000000000e-12,2.12000000000000e-12,2.13000000000000e-12,2.14000000000000e-12,2.15000000000000e-12,2.16000000000000e-12,2.17000000000000e-12,2.18000000000000e-12,2.19000000000000e-12,2.20000000000000e-12,2.21000000000000e-12,2.22000000000000e-12,2.23000000000000e-12,2.24000000000000e-12,2.25000000000000e-12,2.26000000000000e-12,2.27000000000000e-12,2.28000000000000e-12,2.29000000000000e-12,2.30000000000000e-12,2.31000000000000e-12,2.32000000000000e-12,2.33000000000000e-12,2.34000000000000e-12,2.35000000000000e-12,2.36000000000000e-12,2.37000000000000e-12,2.38000000000000e-12,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +axes(handles.axes3) +cla; +plot(tnan,nan_o1,'LineWidth',2,'displayname','Output Power LP01 with Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); + + +% hObject handle to pushbutton14 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in pushbutton15. +function pushbutton15_Callback(hObject, eventdata, handles) +wnan_o2= [0,0,3.03000000000000e-25,6.71000000000000e-25,9.17000000000000e-25,1.04000000000000e-24,1.18000000000000e-24,1.59000000000000e-24,2.21000000000000e-24,2.49000000000000e-24,2.55000000000000e-24,2.63000000000000e-24,3.09000000000000e-24,4.09000000000000e-24,4.45000000000000e-24,4.48000000000000e-24,4.51000000000000e-24,4.99000000000000e-24,6.48000000000000e-24,7.00000000000000e-24,7.02000000000000e-24,7.03000000000000e-24,7.45000000000000e-24,9.53000000000000e-24,1.03000000000000e-23,1.03000000000000e-23,1.03000000000000e-23,1.07000000000000e-23,1.33000000000000e-23,1.46000000000000e-23,1.46000000000000e-23,1.46000000000000e-23,1.48000000000000e-23,1.80000000000000e-23,1.98000000000000e-23,1.98000000000000e-23,1.98000000000000e-23,2.00000000000000e-23,2.35000000000000e-23,2.62000000000000e-23,2.63000000000000e-23,2.63000000000000e-23,2.63000000000000e-23,3.00000000000000e-23,3.37000000000000e-23,3.37000000000000e-23,3.37000000000000e-23,3.37000000000000e-23,3.72000000000000e-23,4.19000000000000e-23,4.20000000000000e-23,4.20000000000000e-23,4.20000000000000e-23,4.49000000000000e-23,5.01000000000000e-23,5.03000000000000e-23,5.03000000000000e-23,5.03000000000000e-23,5.26000000000000e-23,5.69000000000000e-23,5.73000000000000e-23,5.73000000000000e-23,5.73000000000000e-23,5.90000000000000e-23,6.07000000000000e-23,6.14000000000000e-23,6.14000000000000e-23,6.14000000000000e-23,6.26000000000000e-23,6.19000000000000e-23,6.31000000000000e-23,6.31000000000000e-23,6.32000000000000e-23,6.39000000000000e-23,6.48000000000000e-23,6.66000000000000e-23,6.66000000000000e-23,6.67000000000000e-23,6.71000000000000e-23,6.74000000000000e-23,6.99000000000000e-23,6.99000000000000e-23,7.00000000000000e-23,7.02000000000000e-23,7.09000000000000e-23,7.37000000000000e-23,7.37000000000000e-23,7.39000000000000e-23,7.40000000000000e-23,7.45000000000000e-23,7.71000000000000e-23,7.71000000000000e-23,7.73000000000000e-23,7.74000000000000e-23,7.83000000000000e-23,7.95000000000000e-23,7.95000000000000e-23,7.97000000000000e-23,7.97000000000000e-23,8.16000000000000e-23,8.06000000000000e-23,8.06000000000000e-23,8.08000000000000e-23,8.08000000000000e-23,8.38000000000000e-23,8.34000000000000e-23,8.36000000000000e-23,8.37000000000000e-23,8.37000000000000e-23,8.64000000000000e-23,8.65000000000000e-23,8.69000000000000e-23,8.70000000000000e-23,8.70000000000000e-23,8.90000000000000e-23,8.98000000000000e-23,9.05000000000000e-23,9.06000000000000e-23,9.06000000000000e-23,9.19000000000000e-23,9.30000000000000e-23,9.42000000000000e-23,9.42000000000000e-23,9.42000000000000e-23,9.50000000000000e-23,9.63000000000000e-23,9.79000000000000e-23,9.79000000000000e-23,9.79000000000000e-23,9.83000000000000e-23,9.95000000000000e-23,1.01000000000000e-22,1.01000000000000e-22,1.01000000000000e-22,1.02000000000000e-22,1.03000000000000e-22,1.05000000000000e-22,1.05000000000000e-22,1.05000000000000e-22,1.05000000000000e-22,1.06000000000000e-22,1.07000000000000e-22,1.07000000000000e-22,1.07000000000000e-22,1.07000000000000e-22,1.08000000000000e-22,1.09000000000000e-22,1.09000000000000e-22,1.09000000000000e-22,1.09000000000000e-22,1.10000000000000e-22,1.11000000000000e-22,1.11000000000000e-22,1.11000000000000e-22,1.11000000000000e-22,1.12000000000000e-22,1.12000000000000e-22,1.12000000000000e-22,1.12000000000000e-22,1.12000000000000e-22,1.13000000000000e-22,1.14000000000000e-22,1.14000000000000e-22,1.14000000000000e-22,1.14000000000000e-22,1.14000000000000e-22,1.15000000000000e-22,1.15000000000000e-22,1.15000000000000e-22,1.15000000000000e-22,1.16000000000000e-22,1.16000000000000e-22,1.17000000000000e-22,1.17000000000000e-22,1.17000000000000e-22,1.17000000000000e-22,1.17000000000000e-22,1.18000000000000e-22,1.18000000000000e-22,1.18000000000000e-22,1.18000000000000e-22,1.18000000000000e-22,1.19000000000000e-22,1.19000000000000e-22,1.19000000000000e-22,1.19000000000000e-22,1.19000000000000e-22,1.20000000000000e-22,1.20000000000000e-22,1.20000000000000e-22,1.20000000000000e-22,1.20000000000000e-22,1.20000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.23000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.22000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.21000000000000e-22,1.22000000000000e-22,1.21000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.22000000000000e-22,1.23000000000000e-22,1.22000000000000e-22,1.23000000000000e-22]; +twnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +axes(handles.axes4) +cla; +plot(twnan,wnan_o2,'LineWidth',2,'displayname','Output Power LP11 without Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to pushbutton15 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in pushbutton16. +function pushbutton16_Callback(hObject, eventdata, handles) +nan_o2= 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+tnan= 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+axes(handles.axes4) +cla; +plot(tnan,nan_o2,'LineWidth',2,'displayname','Output Power LP11 with Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to pushbutton16 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in canlp01. +function canlp01_Callback(hObject, eventdata, handles) +wnan_o1= 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+twnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +tnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +nan_o1= 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19,3.17000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,3.20000000000000e-19,1.83000000000000e-19,1.94000000000000e-19,1.94000000000000e-19,1.94000000000000e-19,1.96000000000000e-19,2.05000000000000e-19,2.05000000000000e-19]; +axes(handles.axes3) +cla; +plot(twnan,wnan_o1,'LineWidth',2,'displayname','Output Power LP01 without Noise'); +hold on; +plot(tnan,nan_o1,'LineWidth',2,'displayname','Output Power LP01 with Noise'); +legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to canlp01 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in canlp11. +function canlp11_Callback(hObject, eventdata, handles) +wnan_o2= 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+nan_o2= 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+twnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +tnan= 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,2.39000000000000e-12,2.40000000000000e-12,2.41000000000000e-12,2.42000000000000e-12,2.43000000000000e-12,2.44000000000000e-12,2.45000000000000e-12,2.46000000000001e-12,2.47000000000001e-12,2.48000000000001e-12,2.49000000000001e-12,2.50000000000001e-12,2.51000000000001e-12]; +axes(handles.axes4) +cla; +plot(twnan,wnan_o2,'LineWidth',2,'displayname','Output Power LP11 without Noise'); +hold on; +plot(tnan,nan_o2,'LineWidth',2,'displayname','Output Power LP11 with Noise'); +legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to canlp11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in wnlp01. +function wnlp01_Callback(hObject, eventdata, handles) 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000000002e-11,1.19200000000002e-11,1.19300000000002e-11,1.19400000000002e-11,1.19500000000002e-11,1.19600000000002e-11,1.19700000000002e-11,1.19800000000002e-11,1.19900000000002e-11,1.20000000000002e-11,1.20100000000002e-11]; +axes(handles.axes1) +cla; +plot(twncw,wncw_o11,'LineWidth',2,'displayname','Output Power LP01 without Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to wnlp01 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in nlp01. +function nlp01_Callback(hObject, eventdata, handles) +tncw= 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+axes(handles.axes1) +cla; +plot(tncw,ncw_o11,'LineWidth',2,'displayname','Output Power LP01 with Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to nlp01 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in wnlp11. +function wnlp11_Callback(hObject, eventdata, handles) 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000000002e-11,1.19200000000002e-11,1.19300000000002e-11,1.19400000000002e-11,1.19500000000002e-11,1.19600000000002e-11,1.19700000000002e-11,1.19800000000002e-11,1.19900000000002e-11,1.20000000000002e-11,1.20100000000002e-11]; +axes(handles.axes2) +plot(twncw,wncw_o22,'LineWidth',2,'displayname','Output Power LP11 without Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to wnlp11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in nlp11. +function nlp11_Callback(hObject, eventdata, handles) 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000000002e-11,1.19200000000002e-11,1.19300000000002e-11,1.19400000000002e-11,1.19500000000002e-11,1.19600000000002e-11,1.19700000000002e-11,1.19800000000002e-11,1.19900000000002e-11,1.20000000000002e-11,1.20100000000002e-11]; +axes(handles.axes2) +cla; +plot(tncw,ncw_o22,'LineWidth',2,'displayname','Output Power LP11 with Noise');legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); +% hObject handle to nlp11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in clp01. +function clp01_Callback(hObject, eventdata, handles) 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+axes(handles.axes1) +cla; +plot(twncw,wncw_o11,'LineWidth',2,'displayname','Output Power LP01 without Noise'); +hold on; +plot(tncw,ncw_o11,'LineWidth',2,'displayname','Output Power LP01 with Noise'); +legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); + +% hObject handle to clp01 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in clp11. +function clp11_Callback(hObject, eventdata, handles) 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-23,5.92510152634902e-23,5.94934765331038e-23,5.97521749830088e-23,5.99785356704787e-23,6.02392045576167e-23,6.04721571286071e-23,6.07001069369490e-23,6.09411155377280e-23,6.11491181600448e-23,6.13551095743196e-23]; +axes(handles.axes2) +cla; +plot(twncw,wncw_o22,'LineWidth',2,'displayname','Output Power LP11 without Noise'); +hold on; +plot(tncw,ncw_o22,'LineWidth',2,'displayname','Output Power LP11 with Noise'); +legend('-dynamiclegend');xlabel('Time (in sec)'); +ylabel('Power (in W)'); + +% hObject handle to clp11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in pushbutton22. +function pushbutton22_Callback(hObject, eventdata, handles) +a=imread('eps.png'); +figure(1);imshow(a); +% hObject handle to pushbutton22 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in epsilon22. +function epsilon22_Callback(hObject, eventdata, handles) +a=imread('eps.png'); +figure(1);imshow(a); +% hObject handle to epsilon22 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in epsilon11. +function epsilon11_Callback(hObject, eventdata, handles) +a=imread('eps.png'); +figure(1);imshow(a); +% hObject handle to epsilon11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in taue. +function taue_Callback(hObject, eventdata, handles) +% hObject handle to taue (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in taup2. +function taup2_Callback(hObject, eventdata, handles) +a=imread('tao1.png'); +figure(1);imshow(a); +% hObject handle to taup2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in taup1. +function taup1_Callback(hObject, eventdata, handles) +a=imread('tao1.png'); +figure(1);imshow(a); +% hObject handle to taup1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in rb. +function rb_Callback(hObject, eventdata, handles) +a=imread('botr.png'); +figure(1);imshow(a); +% hObject handle to rb (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in rf. +function rf_Callback(hObject, eventdata, handles) +a=imread('topr.png'); +figure(1);imshow(a); +% hObject handle to rf (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in r2. +function r2_Callback(hObject, eventdata, handles) +% hObject handle to r2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in r1. +function r1_Callback(hObject, eventdata, handles) +% hObject handle to r1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in ks. +function ks_Callback(hObject, eventdata, handles) +a=imread('g0.png'); +figure(1);imshow(a); +% hObject handle to ks (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in gamma2. +function gamma2_Callback(hObject, eventdata, handles) +a=imread('gamma.png'); +figure(1);imshow(a); +% hObject handle to gamma2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in gamma1. +function gamma1_Callback(hObject, eventdata, handles) +a=imread('gamma.png'); +figure(1);imshow(a); +% hObject handle to gamma1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in nsp. +function nsp_Callback(hObject, eventdata, handles) +% hObject handle to nsp (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in ntr. +function ntr_Callback(hObject, eventdata, handles) +a=imread('ntr.png'); +figure(1);imshow(a); +% hObject handle to ntr (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in beta. +function beta_Callback(hObject, eventdata, handles) +a=imread('beta.png'); +figure(1);imshow(a); +% hObject handle to beta (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in a0. +function a0_Callback(hObject, eventdata, handles) +a=imread('gn.png'); +figure(1);imshow(a); +% hObject handle to a0 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in vg. +function vg_Callback(hObject, eventdata, handles) +a=imread('vg.png'); +figure(1);imshow(a); +% hObject handle to vg (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + + +function evg_Callback(hObject, eventdata, handles) +% hObject handle to evg (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of evg as text +% str2double(get(hObject,'String')) returns contents of evg as a double + + +% --- Executes during object creation, after setting all properties. +function evg_CreateFcn(hObject, eventdata, handles) +% hObject handle to evg (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function ea0_Callback(hObject, eventdata, handles) +% hObject handle to ea0 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of ea0 as text +% str2double(get(hObject,'String')) returns contents of ea0 as a double + + +% --- Executes during object creation, after setting all properties. +function ea0_CreateFcn(hObject, eventdata, handles) +% hObject handle to ea0 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function ebeta_Callback(hObject, eventdata, handles) +% hObject handle to ebeta (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of ebeta as text +% str2double(get(hObject,'String')) returns contents of ebeta as a double + + +% --- Executes during object creation, after setting all properties. +function ebeta_CreateFcn(hObject, eventdata, handles) +% hObject handle to ebeta (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function entr_Callback(hObject, eventdata, handles) +% hObject handle to entr (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of entr as text +% str2double(get(hObject,'String')) returns contents of entr as a double + + +% --- Executes during object creation, after setting all properties. +function entr_CreateFcn(hObject, eventdata, handles) +% hObject handle to entr (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function ensp_Callback(hObject, eventdata, handles) +% hObject handle to ensp (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of ensp as text +% str2double(get(hObject,'String')) returns contents of ensp as a double + + +% --- Executes during object creation, after setting all properties. +function ensp_CreateFcn(hObject, eventdata, handles) +% hObject handle to ensp (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function egamma1_Callback(hObject, eventdata, handles) +% hObject handle to egamma1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of egamma1 as text +% str2double(get(hObject,'String')) returns contents of egamma1 as a double + + +% --- Executes during object creation, after setting all properties. +function egamma1_CreateFcn(hObject, eventdata, handles) +% hObject handle to egamma1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function egamma2_Callback(hObject, eventdata, handles) +% hObject handle to egamma2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of egamma2 as text +% str2double(get(hObject,'String')) returns contents of egamma2 as a double + + +% --- Executes during object creation, after setting all properties. +function egamma2_CreateFcn(hObject, eventdata, handles) +% hObject handle to egamma2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function eks_Callback(hObject, eventdata, handles) +% hObject handle to eks (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of eks as text +% str2double(get(hObject,'String')) returns contents of eks as a double + + +% --- Executes during object creation, after setting all properties. +function eks_CreateFcn(hObject, eventdata, handles) +% hObject handle to eks (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function er1_Callback(hObject, eventdata, handles) +% hObject handle to er1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of er1 as text +% str2double(get(hObject,'String')) returns contents of er1 as a double + + +% --- Executes during object creation, after setting all properties. +function er1_CreateFcn(hObject, eventdata, handles) +% hObject handle to er1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function er2_Callback(hObject, eventdata, handles) +% hObject handle to er2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of er2 as text +% str2double(get(hObject,'String')) returns contents of er2 as a double + + +% --- Executes during object creation, after setting all properties. +function er2_CreateFcn(hObject, eventdata, handles) +% hObject handle to er2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function erf_Callback(hObject, eventdata, handles) +% hObject handle to erf (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of erf as text +% str2double(get(hObject,'String')) returns contents of erf as a double + + +% --- Executes during object creation, after setting all properties. +function erf_CreateFcn(hObject, eventdata, handles) +% hObject handle to erf (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function erb_Callback(hObject, eventdata, handles) +% hObject handle to erb (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of erb as text +% str2double(get(hObject,'String')) returns contents of erb as a double + + +% --- Executes during object creation, after setting all properties. +function erb_CreateFcn(hObject, eventdata, handles) +% hObject handle to erb (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function etaup1_Callback(hObject, eventdata, handles) +% hObject handle to etaup1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of etaup1 as text +% str2double(get(hObject,'String')) returns contents of etaup1 as a double + + +% --- Executes during object creation, after setting all properties. +function etaup1_CreateFcn(hObject, eventdata, handles) +% hObject handle to etaup1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function etaup2_Callback(hObject, eventdata, handles) +% hObject handle to etaup2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of etaup2 as text +% str2double(get(hObject,'String')) returns contents of etaup2 as a double + + +% --- Executes during object creation, after setting all properties. +function etaup2_CreateFcn(hObject, eventdata, handles) +% hObject handle to etaup2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function etaue_Callback(hObject, eventdata, handles) +% hObject handle to etaue (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of etaue as text +% str2double(get(hObject,'String')) returns contents of etaue as a double + + +% --- Executes during object creation, after setting all properties. +function etaue_CreateFcn(hObject, eventdata, handles) +% hObject handle to etaue (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function eepsilon11_Callback(hObject, eventdata, handles) +% hObject handle to eepsilon11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of eepsilon11 as text +% str2double(get(hObject,'String')) returns contents of eepsilon11 as a double + + +% --- Executes during object creation, after setting all properties. +function eepsilon11_CreateFcn(hObject, eventdata, handles) +% hObject handle to eepsilon11 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function eepsilon12_Callback(hObject, eventdata, handles) +% hObject handle to eepsilon12 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of eepsilon12 as text +% str2double(get(hObject,'String')) returns contents of eepsilon12 as a double + + +% --- Executes during object creation, after setting all properties. +function eepsilon12_CreateFcn(hObject, eventdata, handles) +% hObject handle to eepsilon12 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function eepsilon22_Callback(hObject, eventdata, handles) +% hObject handle to eepsilon22 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of eepsilon22 as text +% str2double(get(hObject,'String')) returns contents of eepsilon22 as a double + + +% --- Executes during object creation, after setting all properties. +function eepsilon22_CreateFcn(hObject, eventdata, handles) +% hObject handle to eepsilon22 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + + +function eepsilon21_Callback(hObject, eventdata, handles) +% hObject handle to eepsilon21 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of eepsilon21 as text +% str2double(get(hObject,'String')) returns contents of eepsilon21 as a double + + +% --- Executes during object creation, after setting all properties. +function eepsilon21_CreateFcn(hObject, eventdata, handles) +% hObject handle to eepsilon21 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + +% --- Executes on button press in lambda1. +function lambda1_Callback(hObject, eventdata, handles) +% hObject handle to lambda1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + + +function elambda1_Callback(hObject, eventdata, handles) +% hObject handle to elambda1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of elambda1 as text +% str2double(get(hObject,'String')) returns contents of elambda1 as a double + + +% --- Executes during object creation, after setting all properties. +function elambda1_CreateFcn(hObject, eventdata, handles) +% hObject handle to elambda1 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + +% --- Executes on button press in lambda2. +function lambda2_Callback(hObject, eventdata, handles) +% hObject handle to lambda2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + + +function elambda2_Callback(hObject, eventdata, handles) +% hObject handle to elambda2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + +% Hints: get(hObject,'String') returns contents of elambda2 as text +% str2double(get(hObject,'String')) returns contents of elambda2 as a double + + +% --- Executes during object creation, after setting all properties. +function elambda2_CreateFcn(hObject, eventdata, handles) +% hObject handle to elambda2 (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called + +% Hint: edit controls usually have a white background on Windows. +% See ISPC and COMPUTER. +if ispc && isequal(get(hObject,'BackgroundColor'), get(0,'defaultUicontrolBackgroundColor')) + set(hObject,'BackgroundColor','white'); +end + + +% --- Executes on button press in biasan. +function biasan_Callback(hObject, eventdata, handles) +lambda1 = str2double(get(handles.elambda1,'string')); +lambda2 = str2double(get(handles.elambda2,'string')); +nu = 30/(lambda1*1e-7); % photon frequency mode 1 +nu2 = 30/(lambda2*1e-7); % photon frequency mode 2 + +bias =(1+ sin(2*pi*nu*((0.1:0.001:.35)*1e-3))+sin(2*pi*nu2*((0.1:0.001:.35)*1e-3))); +figure(2) +plot(bias,'displayname','Input Bias in Two-tone modulation');xlabel('time');ylabel('Amplitude');title('Input Bias in Two-tone modulation'); +% hObject handle to biasan (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in simulatean. +function simulatean_Callback(hObject, eventdata, handles) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = str2double(get(handles.evg,'string')); % 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = str2double(get(handles.ea0,'string')); %3.5e-2; %3.5e-16; %differential gain in cm2 +beta = str2double(get(handles.ebeta,'string')); %1; %1; %spontaneous emission rate +ntr = str2double(get(handles.entr,'string')); %1.33e-3; %1.33e18; %transparency carrier density +nsp = str2double(get(handles.ensp,'string')); %2; %2; %inversion factor +gamma_1 = str2double(get(handles.egamma1,'string')); %0.63; %0.75; %confinement factor for mode 1 +gamma_2 = str2double(get(handles.egamma2,'string')); %0.35 ; %0.35; %confinement factor for mode 2 +ks = str2double(get(handles.eks,'string')); %8.6e-7; %8.6e-7; %gain compression coefficient +r1 = str2double(get(handles.er1,'string')); %4000; %4e-6; %radius of mode 1 +r2 = str2double(get(handles.er2,'string')); %7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = str2double(get(handles.erf,'string')); %0.9991; %0.9991; %reflectivity of the front fece +rb = str2double(get(handles.erb,'string')); %0.9998; %0.9998; %reflectivity of the back face +taup1 = str2double(get(handles.etaup1,'string')); %2; %2e-12; %photon lifetime of mode 1 +taup2 = str2double(get(handles.etaup2,'string')); %1.88; %1.88e-12; %photon lifetime of mode 2 +taue = str2double(get(handles.etaue,'string')); %3000; %3e-9; %carrier lifetime +H = 6.626e-22; % %planks constant in nm g and ns +lambda1 = str2double(get(handles.elambda1,'string')); +lambda2 = str2double(get(handles.elambda2,'string')); +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +h=5.1333e-15;%1e-14; + +% modal wavelengths + +nu = 30/(lambda1*1e-7); % photon frequency mode 1 +nu2 = 30/(lambda2*1e-7); % photon frequency mode 2 + +%initial values +% bias=[0:0.1:120]*1e-2; +bias =(1+ sin(2*pi*nu*((0.1:0.001:.35)*1e-3))+sin(2*pi*nu2*((0.1:0.001:.35)*1e-3))); +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +ps1(1)=0; +ps2(1)=0; +o1(1)=0; +o2(1)=0; +t(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier1(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier2(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon1(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon2(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier1(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier2(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon1(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon2(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier1(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier2(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon1(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon2(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier1(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier2(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon1(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon2(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + + ps1(i+1)=sqrt(0.1*nu)*(abs(fft(p1(i)))); + ps2(i+1)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; +end + +% figure; +% +% plot(t,p1,'LineWidth',2,'displayname','Photon LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +% ylabel('Photon Concentration');title('Photon Concentration in mode LP01'); +% figure; +% plot(t,p2,'LineWidth',2,'displayname','Photon LP11');legend('-dynamiclegend');xlabel('time (in sec)'); +% ylabel('Photon Concentration');title('Photon Concentration in mode LP11'); +% figure; +axes(handles.axes1); +cla; +plot(t,o1,'LineWidth',2,'displayname','Output Power LP01 without noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP01'); +axes(handles.axes3); +cla; +plot(t,o2,'LineWidth',2,'displayname','Output Power LP11 without noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP11'); + +clear c1 c2 p1 p2 ps1 ps2 o1 o2 t; + +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +t(1)=0; +o1(1)=0; +o2(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier11(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier22(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon11(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon22(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier11(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier22(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon11(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon22(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier11(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier22(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon11(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon22(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier11(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier22(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon11(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon22(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + +% ps1(i)=sqrt(0.1*nu)*(abs(fft(p1(i)))); +% ps2(i)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; + + + newo1(i+1)=(p1(i)*H*nu*(1/2*l)*log(1/rf)) /(alpha + (1/2*l)*log(1/(rf*rb))*taue); +end + + +axes(handles.axes2); +cla; +plot(t,o1,'LineWidth',2,'displayname','Output Power LP01 with noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP01'); +axes(handles.axes4); +cla; +plot(t,o2,'LineWidth',2,'displayname','Output Power LP11 with noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP11'); + +% hObject handle to simulatean (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in biascw. +function biascw_Callback(hObject, eventdata, handles) +bias=[0:0.1:120]*1e-2; +figure(1) +plot(bias,'displayname','Input Bias in CW modulation');xlabel('time');ylabel('Amplitude');title('Input Bias in CW modulation'); + +% hObject handle to biascw (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes on button press in simulatecw. +function simulatecw_Callback(hObject, eventdata, handles) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = str2double(get(handles.evg,'string')); % 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = str2double(get(handles.ea0,'string')); %3.5e-2; %3.5e-16; %differential gain in cm2 +beta = str2double(get(handles.ebeta,'string')); %1; %1; %spontaneous emission rate +ntr = str2double(get(handles.entr,'string')); %1.33e-3; %1.33e18; %transparency carrier density +nsp = str2double(get(handles.ensp,'string')); %2; %2; %inversion factor +gamma_1 = str2double(get(handles.egamma1,'string')); %0.63; %0.75; %confinement factor for mode 1 +gamma_2 = str2double(get(handles.egamma2,'string')); %0.35 ; %0.35; %confinement factor for mode 2 +ks = str2double(get(handles.eks,'string')); %8.6e-7; %8.6e-7; %gain compression coefficient +r1 = str2double(get(handles.er1,'string')); %4000; %4e-6; %radius of mode 1 +r2 = str2double(get(handles.er2,'string')); %7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = str2double(get(handles.erf,'string')); %0.9991; %0.9991; %reflectivity of the front fece +rb = str2double(get(handles.erb,'string')); %0.9998; %0.9998; %reflectivity of the back face +taup1 = str2double(get(handles.etaup1,'string')); %2; %2e-12; %photon lifetime of mode 1 +taup2 = str2double(get(handles.etaup2,'string')); %1.88; %1.88e-12; %photon lifetime of mode 2 +taue = str2double(get(handles.etaue,'string')); %3000; %3e-9; %carrier lifetime +H = 6.626e-22; % %planks constant in nm g and ns +lambda1 = str2double(get(handles.elambda1,'string')); +lambda2 = str2double(get(handles.elambda2,'string')); +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +h=5.1333e-15;%1e-14; + +% modal wavelengths + +nu = 30/(lambda1*1e-7); % photon frequency mode 1 +nu2 = 30/(lambda2*1e-7); % photon frequency mode 2 + +%initial values +bias=[0:0.1:120]*1e-2; +% bias =(1+ sin(2*pi*nu*((0.1:0.001:.35)*1e-3))+sin(2*pi*nu2*((0.1:0.001:.35)*1e-3))); +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +ps1(1)=0; +ps2(1)=0; +o1(1)=0; +o2(1)=0; +t(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier1(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier2(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon1(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon2(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier1(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier2(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon1(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon2(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier1(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier2(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon1(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon2(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier1(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier2(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon1(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon2(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + + ps1(i+1)=sqrt(0.1*nu)*(abs(fft(p1(i)))); + ps2(i+1)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; +end + +% figure; +% +% plot(t,p1,'LineWidth',2,'displayname','Photon LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +% ylabel('Photon Concentration');title('Photon Concentration in mode LP01'); +% figure; +% plot(t,p2,'LineWidth',2,'displayname','Photon LP11');legend('-dynamiclegend');xlabel('time (in sec)'); +% ylabel('Photon Concentration');title('Photon Concentration in mode LP11'); +% figure; +axes(handles.axes1); +cla; +plot(t,o1,'LineWidth',2,'displayname','Output Power LP01 without noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP01'); +axes(handles.axes3); +cla; +plot(t,o2,'LineWidth',2,'displayname','Output Power LP11 without noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP11'); + +clear c1 c2 p1 p2 ps1 ps2 o1 o2 t; + +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +t(1)=0; +o1(1)=0; +o2(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier11(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier22(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon11(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon22(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier11(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier22(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon11(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon22(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier11(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier22(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon11(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon22(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier11(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier22(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon11(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon22(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + +% ps1(i)=sqrt(0.1*nu)*(abs(fft(p1(i)))); +% ps2(i)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; + + + newo1(i+1)=(p1(i)*H*nu*(1/2*l)*log(1/rf)) /(alpha + (1/2*l)*log(1/(rf*rb))*taue); +end + + +axes(handles.axes2); +cla; +plot(t,o1,'LineWidth',2,'displayname','Output Power LP01 with noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP01'); +axes(handles.axes4); +cla; +plot(t,o2,'LineWidth',2,'displayname','Output Power LP11 with noise');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');%title('Output Power in mode LP11'); +% hObject handle to simulatecw (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles structure with handles and user data (see GUIDATA) + + +% --- Executes during object creation, after setting all properties. +function biasan_CreateFcn(hObject, eventdata, handles) +% hObject handle to biasan (see GCBO) +% eventdata reserved - to be defined in a future version of MATLAB +% handles empty - handles not created until after all CreateFcns called diff --git a/first.m b/first.m new file mode 100644 index 0000000..cd0b8d9 --- /dev/null +++ b/first.m @@ -0,0 +1,130 @@ +clear all; clc; +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +H = 6.626e-22; % %planks constant in nm g and ns + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + + +% g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +% g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain +% +% g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +% g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + + + +% fc1= @carrier1 %(t, bias,c1,p1,p2) (bias/(v1*q)) - (c1/taue) - ((gamma_1*p1 + gamma_2*p2)*(((vg*ao*(c1-ntr)*(d/l))*(1-ks*(gamma_1*p1+gamma_2*p2)))/v1)); +% fc2= @carrier2 %(t, bias,c2,p1,p2) (bias/(v2*q)) - (c2/taue) - (((1-gamma_1)*p1 + (1-gamma_2)*p2)*(((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2)))))/v2)); +% fp1= @photon1 %(t, p1,p2,c1,c2) (gamma_1*((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))) + (1-gamma_1)*((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))) - (1/taup1))*p1 + ((beta*nsp)/taup1); +% fp2= @photon2 %(t, p1,p2,c1,c2) (gamma_2*((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))) + (1-gamma_2)*((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))) - (1/taup2))*p2 + ((beta*nsp)/taup2); + +%step size + +h=5.1333e-15;%1e-14; + +% modal wavelengths + +nu = 30/1510e-7; % photon frequency mode 1 +nu2 = 30/1550e-7; % photon frequency mode 2 + +%initial values +bias=[0:0.1:120]*1e-2; +% bias=[0:0.01:3]; +% bias =(1+ sin(2*pi*nu*((0.1:0.001:.35)*1e-3))+sin(2*pi*nu2*((0.1:0.001:.35)*1e-3))); +% bias=[0.00E+00 5.00E-02 1.00E-01 1.50E-01 2.00E-01 2.50E-01 3.00E-01 3.50E-01 4.00E-01 4.50E-01 5.00E-01 5.50E-01 6.00E-01 6.50E-01 7.00E-01 7.50E-01 8.00E-01 8.50E-01 9.00E-01 9.50E-01 1.00E+00 1.05E+00 1.10E+00 1.15E+00 1.20E+00 1.25E+00 1.30E+00 1.35E+00 1.40E+00 1.45E+00 1.50E+00 1.55E+00 1.60E+00 1.65E+00 1.70E+00 1.75E+00 1.80E+00 1.85E+00 1.90E+00 1.95E+00 2.00E+00 2.05E+00 2.10E+00 2.15E+00 2.20E+00 2.25E+00 2.30E+00 2.35E+00 2.40E+00]; +% bias=0:0.1:2.8; +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +t(1)=0; +o1(1)=0; +o2(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier11(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier22(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon11(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon22(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier11(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier22(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon11(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon22(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier11(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier22(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon11(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon22(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier11(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier22(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon11(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon22(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + +% ps1(i)=sqrt(0.1*nu)*(abs(fft(p1(i)))); +% ps2(i)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; + + + newo1(i+1)=(p1(i)*H*nu*(1/2*l)*log(1/rf)) /(alpha + (1/2*l)*log(1/(rf*rb))*taue); +end +for i=1:length(p1) +fs1(i)=((-1+2*rand))*sqrt((2*beta*nsp*p1(i)*0.1)/(0.1*taup1)); +np1(i)=p1(i)+fs1(i); +fs2(i)=((-1+2*rand))*sqrt((2*beta*nsp*p2(i)*0.1)/(0.1*taup2)); +np2(i)=p2(i)+fs2(i); +end + +for i=1:length(p1) + no1(i)=np1(i)*H*nu*(rb-rf)/taup1; + no2(i)=np2(i)*H*nu2*(rb-rf)/taup1; +end +figure; +plot(t,p1,'displayname','Photon LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Photon Concentration');title('Photon Concentration in mode LP01'); +figure; +plot(t,p2,'displayname','Photon LP11');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Photon Concentration');title('Photon Concentration in mode LP11'); +figure; +plot(t,o1,'displayname','Output Power LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');title('Output Power in mode LP01'); +hold on; +% plot(t,no1,'displayname','Distorted LP01');legend('-dynamiclegend'); +figure; +plot(t,o2,'displayname','Output Power LP11');hold on;legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');title('Output Power in mode LP11'); +% plot(t,no2,'displayname','Distorted LP11');legend('-dynamiclegend'); diff --git a/first1.m b/first1.m new file mode 100644 index 0000000..85ddc2e --- /dev/null +++ b/first1.m @@ -0,0 +1,112 @@ +clear; clc; +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +H = 6.626e-22; % %planks constant in nm g and ns + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + + +% g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +% g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain +% +% g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +% g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + + + +% fc1= @carrier1 %(t, bias,c1,p1,p2) (bias/(v1*q)) - (c1/taue) - ((gamma_1*p1 + gamma_2*p2)*(((vg*ao*(c1-ntr)*(d/l))*(1-ks*(gamma_1*p1+gamma_2*p2)))/v1)); +% fc2= @carrier2 %(t, bias,c2,p1,p2) (bias/(v2*q)) - (c2/taue) - (((1-gamma_1)*p1 + (1-gamma_2)*p2)*(((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2)))))/v2)); +% fp1= @photon1 %(t, p1,p2,c1,c2) (gamma_1*((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))) + (1-gamma_1)*((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))) - (1/taup1))*p1 + ((beta*nsp)/taup1); +% fp2= @photon2 %(t, p1,p2,c1,c2) (gamma_2*((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))) + (1-gamma_2)*((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))) - (1/taup2))*p2 + ((beta*nsp)/taup2); + +%step size + +h=5.1333e-15;%1e-14; + +% modal wavelengths + +nu = 30/1510e-7; % photon frequency mode 1 +nu2 = 30/1550e-7; % photon frequency mode 2 + +%initial values +% bias=[0:0.1:120]*1e-2; +bias =(1+ sin(2*pi*nu*((0.1:0.001:.35)*1e-3))+sin(2*pi*nu2*((0.1:0.001:.35)*1e-3))); +c1(1)=0; +c2(1)=0; +p1(1)=0; +p2(1)=0; +ps1(1)=0; +ps2(1)=0; +o1(1)=0; +o2(1)=0; +t(1)=0; + +for i=1:length(bias) + t(i+1)=t(i)+h; + + % expression for evaluating k1s + k1c1= carrier1(t(i), bias(i),c1(i),p1(i),p2(i)); + k1c2= carrier2(t(i), bias(i),c2(i),p1(i),p2(i)); + k1p1= photon1(t(i), p1(i),p2(i),c1(i),c2(i)); + k1p2= photon2(t(i), p1(i),p2(i),c1(i),c2(i)); + + % expression for evaluating k2s + k2c1= carrier1(t(i)+h/2, bias(i) ,c1(i)+h/2+k1c1 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2c2= carrier2(t(i)+h/2, bias(i) ,c2(i)+h/2+k1c2 ,p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2); + k2p1= photon1(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + k2p2= photon2(t(i)+h/2 , p1(i)+h/2+k1p1 ,p2(i)+h/2+k1p2 ,c1(i)+h/2+k1c1 ,c2(i)+h/2+k1c2); + + % expression for k3s + k3c1= carrier1(t(i)+h/2, bias(i), c1(i)+h/2+k2c1 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3c2= carrier2(t(i)+h/2, bias(i), c2(i)+h/2+k2c2 ,p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2); + k3p1= photon1(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + k3p2= photon2(t(i)+h/2 , p1(i)+h/2+k2p1 ,p2(i)+h/2+k2p2 ,c1(i)+h/2+k2c1 ,c2(i)+h/2+k2c2); + + % expression for k4s + k4c1= carrier1(t(i)+h, bias(i), c1(i)+h+k3c1 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4c2= carrier2(t(i)+h, bias(i), c2(i)+h+k3c2 ,p1(i)+h+k2p1 ,p2(i)+h+k2p2); + k4p1= photon1(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + k4p2= photon2(t(i)+h , p1(i)+h+k3p1 ,p2(i)+h+k2p2 ,c1(i)+h+k2c1 ,c2(i)+h+k2c2); + + c1(i+1)= c1(i) + (h*(k1c1+2*k2c1+2*k3c1*k4c1))/6; + c2(i+1)= c2(i) + h/6 *(k1c2+2*k2c2+2*k3c2*k4c2); + p1(i+1)= p1(i) + h/6 *(k1p1+2*k2p1+2*k3p1*k4p1); + p2(i+1)= p2(i) + h/6 *(k1p2+2*k2p2+2*k3p2*k4p2); + + ps1(i+1)=sqrt(0.1*nu)*(abs(fft(p1(i)))); + ps2(i+1)=sqrt(0.1*nu2)*(abs(fft(p2(i)))); + + o1(i+1)=p1(i)*H*nu*(rb-rf)/taup1; + o2(i+1)=p2(i)*H*nu2*(rb-rf)/taup2; +end +figure; +plot(t,p1,'LineWidth',2,'displayname','Photon LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Photon Concentration');title('Photon Concentration in mode LP01'); +figure; +plot(t,p2,'LineWidth',2,'displayname','Photon LP11');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Photon Concentration');title('Photon Concentration in mode LP11'); +figure; +plot(t,o1,'LineWidth',2,'displayname','Output Power LP01');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');title('Output Power in mode LP01'); +figure; +plot(t,o2,'LineWidth',2,'displayname','Output Power LP11');legend('-dynamiclegend');xlabel('time (in sec)'); +ylabel('Power (in W)');title('Output Power in mode LP11'); + diff --git a/g0.PNG b/g0.PNG new file mode 100644 index 0000000..5f30040 Binary files /dev/null and b/g0.PNG differ diff --git a/gamma.PNG b/gamma.PNG new file mode 100644 index 0000000..5f63161 Binary files /dev/null and b/gamma.PNG differ diff --git a/gamman.PNG b/gamman.PNG new file mode 100644 index 0000000..85f288c Binary files /dev/null and b/gamman.PNG differ diff --git a/gn.PNG b/gn.PNG new file mode 100644 index 0000000..1bdc952 Binary files /dev/null and b/gn.PNG differ diff --git a/h.PNG b/h.PNG new file mode 100644 index 0000000..589822e Binary files /dev/null and b/h.PNG differ diff --git a/ntr.PNG b/ntr.PNG new file mode 100644 index 0000000..388d08e Binary files /dev/null and b/ntr.PNG differ diff --git a/nu.PNG b/nu.PNG new file mode 100644 index 0000000..2b6294a Binary files /dev/null and b/nu.PNG differ diff --git a/photon1.m b/photon1.m new file mode 100644 index 0000000..f38ffb2 --- /dev/null +++ b/photon1.m @@ -0,0 +1,33 @@ +function p1=photon1(t, p1,p2,c1,c2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +p1=(gamma_1*g1 + (1-gamma_1)*g2 - (1/taup1))*p1 + ((beta*nsp)/taup1); +end \ No newline at end of file diff --git a/photon11.m b/photon11.m new file mode 100644 index 0000000..9d5dfb2 --- /dev/null +++ b/photon11.m @@ -0,0 +1,45 @@ +function p1=photon11(t, p1,p2,c1,c2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +eps11 =2e-7; %self-gain saturation coefficient mode 1 +eps22 =2e-7; %self-gain saturation coefficient mode 2 +eps12 =0.5e-7; %cross- gain saturation coefficient mode 1 +eps21 =0.5e-7; %cross- gain saturation coefficient mode 2 + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-(p1*eps11)-(eps12*p2))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-(p2*eps22)-(eps21*p1))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain +if p1<0 + p11=-p1; +else + p11=p1; +end +p11; +fs1=((-1+2*rand))*sqrt((2*beta*nsp*p11*0.1)/(0.1*taup1)); + + +p1=(gamma_1*g1 + (1-gamma_1)*g2 - (1/taup1))*p11 + ((beta*nsp)/taup1)+fs1; +end \ No newline at end of file diff --git a/photon2.m b/photon2.m new file mode 100644 index 0000000..fa4b2af --- /dev/null +++ b/photon2.m @@ -0,0 +1,33 @@ +function p2=photon2(t, p1,p2,c1,c2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +p2=(gamma_2*g1 + (1-gamma_2)*g2 - (1/taup2))*p2 + ((beta*nsp)/taup2); +end \ No newline at end of file diff --git a/photon22.m b/photon22.m new file mode 100644 index 0000000..f7a7c6c --- /dev/null +++ b/photon22.m @@ -0,0 +1,45 @@ +function p2=photon22(t, p1,p2,c1,c2) +q = 1.6e-10; %1.6e-19; %electron charge in A/ns +vg = 8.36e4; %8.36e9; %group velocity +d = 24; %24e-9; %thickness of active layer in cm +l = 1000; %1e-6; %length of cavity in VCSEL cm +ao = 3.5e-2; %3.5e-16; %differential gain in cm2 +beta = 1; %1; %spontaneous emission rate +ntr = 1.33e-3; %1.33e18; %transparency carrier density +nsp = 2; %2; %inversion factor +gamma_1 = 0.63; %0.75; %confinement factor for mode 1 +gamma_2 = 0.35 ; %0.35; %confinement factor for mode 2 +ks = 8.6e-7; %8.6e-7; %gain compression coefficient +r1 = 4000; %4e-6; %radius of mode 1 +r2 = 7500; %7.5e-6; %radius of mode 2 +alpha = 1e-6; %1000; %material loss of the active layer +rf = 0.9991; %0.9991; %reflectivity of the front fece +rb = 0.9998; %0.9998; %reflectivity of the back face +taup1 = 2; %2e-12; %photon lifetime of mode 1 +taup2 = 1.88; %1.88e-12; %photon lifetime of mode 2 +taue = 3000; %3e-9; %carrier lifetime +eps11 =2e-7; %self-gain saturation coefficient mode 1 +eps22 =2e-7; %self-gain saturation coefficient mode 2 +eps12 =0.5e-7; %cross- gain saturation coefficient mode 1 +eps21 =0.5e-7; %cross- gain saturation coefficient mode 2 + + +v1=pi*(r1^2)*d; +v2=pi*(r2^2)*d; + +g1l=(vg*(d/l)*ao*(c1-ntr)); % modal gain +g2l=(vg*(d/l)*ao*(c2-ntr)); % modal gain + +g1=((vg*(d/l)*ao*(c1-ntr))*(1-(p1*eps11)-(eps12*p2))*(1-ks*(gamma_1*p1+gamma_2*p2))); %linear modal gain +g2=((vg*(d/l)*ao*(c2-ntr))*(1-(p2*eps22)-(eps21*p1))*(1-ks*((p1*(1-gamma_1))+(p2*(1-gamma_2))))); %linear modal gain + +if p2<0 + p22=-p2; +else + p22=p2; +end +p22; +fs2=((-1+2*rand))*sqrt((2*beta*nsp*p22*0.01)/(0.1*taup2)); + +p2=(gamma_2*g1 + (1-gamma_2)*g2 - (1/taup2))*p22 + ((beta*nsp)/taup2)+fs2; +end \ No newline at end of file diff --git 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