Signal Processing Asked by JBphysics on January 20, 2021
I am trying to take a Fourier transform of a femtosecond pulse train and plot the frequency spectrum.
I followed this question and am able to create a pulse train and plot both the time and frequency domain.
My question is, why do the pulses overlap in the time domain graph, since their width is on the order of femtoseconds, and the distance between them (T) is much larger?
Is it an issue with my time vector or am I interpreting the graph incorrectly?
%Using a Gaussian carrier envelope for the e-field, I show a comb of laser
%frequencies defining frep, and its representation in freq space. The
%sampling frequency is 10 times the freq (f=10*fs, fs=fr so fr=f/10).
%Define variables
fr=120e6; %rep rate, units: Hz
fs=10*fr; %sampling frequency, units: Hz
T=1/fs; %period, units: s (~fs) (sampling time)
tau=100e-15; %proportional to pulse duration, units: s
%tau=(pulse_duration)/sqrt(2*log(2));
wl=2*pi*fr; %carrier frequency, units: Hz
ceo=0; %offset freq., can change later
%Define electric field
L=1500; %sets axis length
t=(0:L-1)*T; %time, units: s
Es=zeros(length(t));
for n=0:100 %n is the number of pulses (depends on L)
for i=1:length(t)
Es(n+1,i)=exp(-(t(i)-n*T)^2/tau^2)*exp(-1i*wl*t(i));
end
end
E=sum(Es,1);
%Fourier Transform to frequency
F=abs(fft(E)); %Fourier transform the vector Es
FT=F(L/2:L-1); %Take out half due to symmetry
FTn=FT/max(FT); %Normalized y-axis
f=(1/L)*(L/2:L-1)*fs; %Frequency for plotting
%Plots versus time and frequency
figure(1)
plot(t,real(E))
xlim([0 max(t)/2])
xlabel('Time (s)')
ylim([-1.2 1.2])
ylabel('Amplitude')
figure(2)
plot(f,FTn,'k')
xlabel('Frequency (Hz)')
xlim([min(f) max(f)])
ylabel('Normalized Amplitude')
Let us first see the theory. By pulse train I guess you mean a periodic function from minus infinity to plus infinity. Your pulse train will have the Fourier series(FS) in stead of Fourier transform(FT). Fortunately the FT of a single pulse and the FS of the pulse train are related. Let the pulse train be periodic with P Hz. Then the FS of the pulse train will be sampled version of FT with a sampling rate of P Hz. i.e. except for a scaling factor, the FS values are the samples of the FT sampled at P Hz. And the single pulse FT is a sinc function. Thus pulse train will have FS coefficients which are samples of the sinc function.
Answered by Seetha Rama Raju Sanapala on January 20, 2021
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