2013
DOI: 10.1103/physreva.88.033828
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Theory of Talbot lasers

Abstract: International audienceWeprovideatheoreticalstudyoffrequency-shiftedfeedback(FSF)lasers,i.e.,laserswithaninternalfrequency shifter,seededwithamonochromaticwave.Theresultingspectrumconsistsinasetofequidistantmodes,labeled by n, whose phases vary quadratically with n. We prove the emergence of a temporal fractional Talbot effect, leading to generation of Fourier-transform-limited pulses at a repetition rate tunable by the parameters of the FSF cavity (cavity length and frequency shift per round trip), and limited… Show more

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Cited by 77 publications
(43 citation statements)
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“…Our technique makes no use of non-linear media, nor fast electronic function generator. It is based on a simple frequency-shifting loop (FSL) seeded by a CW laser [34][35][36][37][38]. The comb lines are produced by successive frequency shifts in the loop.…”
Section: Introductionmentioning
confidence: 99%
See 1 more Smart Citation
“…Our technique makes no use of non-linear media, nor fast electronic function generator. It is based on a simple frequency-shifting loop (FSL) seeded by a CW laser [34][35][36][37][38]. The comb lines are produced by successive frequency shifts in the loop.…”
Section: Introductionmentioning
confidence: 99%
“…Notice that seeded FSLs have been previously employed for generating pulse trains with tunable and ultrahigh repetition rates [35], as well as for performing optical real-time Fourier transformations [37,38]. These time-domain applications take advantage of the temporal Talbot effect, which is originated by the controllable spectral quadratic phase exhibited by the comb modes [36]. In the frequency domain, it has been shown that acousto-optic frequency shifting loops can generate relatively flat spectra composed of >1000 modes [39].…”
Section: Introductionmentioning
confidence: 99%
“…As such, the process was referred to as a temporal Talbot array illuminator (T‐TAI). Additionally, CW‐seeded frequency‐shifted loop cavities have been demonstrated to produce mode‐locked pulse trains by emulating temporal Talbot conditions thanks to the interplay between the cavity roundtrip time and a frequency‐shifting element . Such laser architectures allow for generation of pulse trains from CW sources, with repetition rates tunable in the MHz and GHz regimes.…”
Section: Review Of Experimental Work On Energy‐preserving Signal Procmentioning
confidence: 99%
“…Furthermore, a scheme for user‐defined frequency comb generation with FSR reconfigurability over 6 orders of magnitude (from the kHz to the GHz regime) was demonstrated . This was achieved using an acousto‐optic frequency shifted feedback laser design for generation of a frequency comb with a reconfigurable quadratic (dispersive) spectral phase profile, combined with Talbot TPM. Other approaches for comb generation and FSR control relying on nonlinear‐optics schemes were also demonstrated …”
Section: Review Of Experimental Work On Energy‐preserving Signal Procmentioning
confidence: 99%
“…Further detailed analysis of FSF-laser properties and some new applications was presented by the Grenoble group [32,33,34,35,36,37,38]. …”
Section: The Fsf Laser Conceptmentioning
confidence: 99%