超快光学 第19章 放大.ppt
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1、The Amplification of Ultra-short Laser Pulses,Francois Salin Center for Intense Lasersand Applications(CELIA)Universit Bordeaux I,Francesalincelia.u-bordeaux.frGilles Darpentigny(CELIA),Vincent Bagnoud(LLE)Antoine Courjaud,Clemens Honninger,Eric Mottay(Amplitude Systemes),Luc Vigroux(Amplitude Techn
2、ologies)and some additional stuff from Dan Mittleman,Rice,Pulse compressor,t,t,Solid state amplifier,t,Dispersive delay line,t,Short pulse oscillator,Mostof this lecture courtesy of,Pulse energy vs.Repetition rate,Rep rate(pps),Pulse energy(J),Oscillator,Cavity-dumped oscillator,RegA,Regen,Regen+mul
3、tipass,Regen+multi-multi-pass,1 W average power,A t,What are the goals in ultrashort pulse amplification?,Ipeak=,E,Increase the energy(E),Decrease the duration(t),Decrease the area of the focus(A).,Maximum intensity on target,Needed to start the experiment,Needed to get useful results,Pave=E r,Signa
4、l is proportional to the number of photons on the detector per integration time.,Maximum average power at the detector,Pulseenergy,Rep rate,Pulseenergy,Beam area,Pulse length,Issues in Ultrafast Amplification and Their Solutions,Pulse length discrepancies:Multi-pass amplifiers and regenerative ampli
5、fiers(“Regens”).Damage:Chirped-Pulse Amplification(CPA)Gain saturation:Frantz-Nodvick EquationGain narrowing:Birefringent filtersThermal effects:cold and wavefront correctionSatellite pulses,Contrast,and Amplified Spontaneous Emission:Pockels cellsSystems cost lots of money:Earn more money,Cavity Du
6、mping,Before we consider amplification,recall that the intracavity pulse energy is 50 times the output pulse energy.So we have more pulse energy.How can we get at it?,What if we instead used two high reflectors,let the pulse energy build up,and then switch out the pulse?This is the opposite of Q-swi
7、tching:it involves switching from minimum to maximum loss,and its called“Cavity Dumping.”,Cavity dumping:the Pockels cell,A Pockels cell is a device that can switch a pulse(in and)out of a resonator.Its used in Q-switches and cavity dumpers.A voltage(a few kV)can turn a crystal into a half-or quarte
8、r-wave plate.,V,If V=0,the pulse polarization doesnt change.,If V=Vp,the pulse polarization switches to its orthogonal state.,Abruptly switching a Pockels cell allows us to extract a pulse from a cavity.This allows us to achieve 100 times the pulse energy at 1/100 the repetition rate(i.e.,100 nJ at
9、1 MHz).,Pockels cell(voltage may be transverse or longitudinal),Polarizer,Amplification of Laser Pulses,in General,Very simply,a powerful laser pulse at one color pumps an amplifier medium,creating an inversion,which amplifies another pulse.,Nanosecond-pulse laser amplifiers pumped by other ns laser
10、s are commonplace.,Laser oscillator,Amplifier medium,Pump,Energy levels,Jpump(lpump/lL),lL,lpump,Single-pass Amplification Math,Assume a saturable gain medium and J is the fluence(energy/area).Assume all the pump energy is stored in the amplifier,but saturation effects will occur.,At low intensity,t
11、he gain is linear:,At high intensity,the gain“saturates”and hence is constant:,Intermediate case interpolates between the two:,Jsto=stored pump fluence=Jpump(lpump/lL)Jsat=saturation fluence(material dependent),Single-pass Amplification Math,where the small signal gain per pass is given by:,This dif
12、ferential equation can be integrated to yield the Frantz-Nodvick equation for the output of a saturated amplifier:,Frantz-Nodvick equation,G,0,exp(,g,0,L),exp(,J,sto,J,sat,),Higher pumping(Jsto)means higher efficiency and higher saturation and so lower gain.So you can have high gain or high extracti
13、on efficiency.But not both.,Gain,Extraction efficiency(Jout/Jsto),J,sto,/J,sat,Jout/Jin,Another problem with amplifying ultrashort laser pulses,Another issue is that the ultrashort pulse is so much shorter than the(ns or ms)pump pulse that supplies the energy for amplification.,So should the ultrash
14、ort pulse arrive early or late?,Early:,Late:,Pump energy arrives too late and is wasted.,time,pump,pump,time,Energy decays and is wasted.,In both cases,pump pulse energy is wasted,and amplification is poor.,So we need many passes.,All ultrashort-pulse amplifiers are multi-pass.,This approach achieve
15、s much greater efficiency.,The ultrashort pulse returns many times to eventually extract most of the energy.,Two main amplification methods,Multi-pass amplifier,Regenerative amplifier,Another multi-pass amplifier,A Pockels cell(PC)and a pair of polarizers are used to inject a single pulse into the a
16、mplifier.,Regenerative amplifier geometries,This is used for 10-20-Hz repetition rates.It has a larger spot size in the Ti:sapphire rod.,The Ti:Sapphire rod is 20-mm long and doped for 90%absorption.,This design is often used for kHz-repetition-rate amplifiers.,Pulse intensities inside an amplifier
17、can become so high that damage(or at least small-scale self-focusing)occurs.Solution:Expand the beam and use large amplifier media.Okay,we did that.But thats still not enough.Solution:Expand the pulse in time,too.,Okay,so what next?,Chirped-Pulse Amplification,Chirped-pulse amplification in-volves s
18、tretching the pulse before amplifying it,and then compressing it later.,We can stretch the pulse by a factor of 10,000,amplify it,and then recompress it!,G.Mourou and coworkers 1983,CPA is THE big development.,Pulse compressor,t,t,Solid state amplifier,t,Dispersive delay line,t,Short pulse oscillato
19、r,Stretching and compressing ultrashort pulses,Okay,this looks just like a“zero-dispersion stretcher”used in pulse shaping.But when d f,its a dispersive stretcher and can stretch fs pulses by a factor of 10,000!With the opposite sign of d-f,we can compress the pulse.,Pulse stretcher,A pulse stretche
20、r,This device stretches an 18-fs pulse to 600 psa factor of 30,000!A ray trace of the various wavelengths in the stretcher:,Alexandrite,Ti:sapphire,Excimers,Nd:Glass,Dyes,Direct Amplification,Fluence(J/cm2),Pulse Duration(fs),CPA vs.Direct Amplification,CPA achieves the fluence of long pulses but at
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