Acta Photonica Sinica, Volume. 50, Issue 8, 0850212(2021)
Ultrafast Group-velocity Control via Cascaded Optical Parametric Amplification (Invited)
[1] KRAUSS T F. Why do we need slow light?[J]. Nature Photonics, 2, 448-450(2008).
[2] EGGLETON B J. Expect more delays[J]. Nature, 433, 811-812(2005).
[3] BORTOLOZZO U, RESIDORI S. Slow and fast light: basic concepts and recent advancements based on nonlinear wave-mixing processes[J]. Laser & Photonics Reviews, 4, 483-498(2010).
[4] THÉVENAZ L. Slow and fast light in optical fibres[J]. Nature Photonics, 2, 474-481(2008).
[5] PARRA E, LOWELL J R. Toward applications of slow light technology[J]. Optics and Photonics News, 18, 40-45(2007).
[6] BOYD R W, GAUTHIER D J, GAETA A L. Applications of slow light in telecommunications[J]. Optics and Photonics News, 17, 18-23(2006).
[7] BOYD R W. Slow and fast light: fundamentals and applications[J]. Journal of Modern Optics, 56, 1908-1915(2009).
[8] SHI Z, BOYD R W, CAMACHO R M et al. Slow-light Fourier transform interferometer[J]. Physical Review Letters, 99, 240801(2007).
[9] SOLJAČIĆ M, JOANNOPOULOS J D. Enhancement of nonlinear effects using photonic crystals[J]. Nature Materials, 3, 211-219(2004).
[10] HARRIS S E. Electromagnetically induced transparency[J]. Physics Today, 50, 36-42(1997).
[11] VESTERGAARD L, HARRIS S E, DUTTON Z et al. Light speed reduction to 17 meters per second in an ultracold atomic gas[J]. Nature, 397, 594-598(1999).
[12] BIGELOW M S, LEPESHKIN N N, BOYD R W. Observation of ultraslow light propagation in a ruby crystal at room temperature[J]. Physical Review Letters, 90, 113903(2003).
[13] BIGELOW M S, LEPESHKIN N N, BOYD R W. Superluminal and slow light propagation in a room temperature[J]. Science, 301, 200-202(2003).
[14] BABA T. Slow light in photonic crystals[J]. Nature Photonics, 2, 465-473(2008).
[15] VLASOV Y A, O’BOYLE M, HAMANN H F et al. Active control of slow light on a chip with photonic crystal waveguides[J]. Nature, 438, 65-69(2005).
[16] OKAWACHI Y, BIGELOW M S, SHARPING J E et al. Tunable all-optical delays via Brillouin slow light in an optical fiber[J]. Physical Review Letters, 94, 153902(2005).
[17] SONG K Y, HOTATE K. 25 GHz bandwidth Brillouin slow light in optical fibers[J]. Optics Letters, 32, 217-219(2007).
[18] SHARPING J E, OKAWACHI Y, GAETA A L et al. Wide bandwidth slow light using a Raman fiber amplifier[J]. Optics Express, 13, 6092-6098(2005).
[19] BUSTARD P J, HESHAMI K, ENGLAND D G et al. Raman-induced slow-light delay of THz-bandwidth pulses[J]. Physical Review A, 93(2016).
[20] DAHAN D, EISENSTEIN G. Tunable all optical delay via slow and fast light propagation in a Raman assisted fiber optical parametric amplifier: a route to all optical buffering[J]. Optics Express, 13, 6234-6249(2005).
[21] SHUMAKHER E, WILLINGER A, BLIT R et al. Large tunable delay with low distortion of 10 Gbit/s data in a slow light system based on narrow band fiber parametric amplification[J]. Optics Express, 14, 8540-8545(2006).
[22] ZHOU B J, MA J G, WANG J et al. Ultrafast group-velocity control via cascaded quadratic nonlinearities in optical parametric amplification[J]. Optics Letters, 43, 3790-3793(2018).
[23] MARANGONI M, MANZONI G, RAMPONI R et al. Group-velocity control by quadratic nonlinear interactions[J]. Optics Letters, 31, 534-536(2006).
[24] LU W, CHEN Y et al. All-optical tunable group-velocity control of femtosecond pulse by quadratic nonlinear cascading interactions[J]. Optics Express, 16, 355-361(2008).
[25] FÜLÖP J A, MAJOR ZS, HORVÁTH B et al. Shaping of picosecond pulses for pumping optical parametric amplification[J]. Applied Physics B, 87, 79-84(2007).
[26] PARK Y, ASGHARI M H et al. Transform-limited picosecond pulse shaping based on temporal coherence synthesization[J]. Optics Express, 15, 9584-9599(2007).
[27] LIU F, HUANG S, SI S et al. Generation of picosecond pulses with variable temporal profiles and linear polarization by coherent pulse stacking in a birefringent crystal shaper[J]. Optics Express, 27, 1467-1478(2019).
[28] POWER J G, JING C. Temporal laser pulse shaping for RF photocathode guns: the cheap and easy way using UV birefringent crystals[C], 1086, 689-694(2009).
[29] ZHOU B J, MA J G, WANG J et al. Nonlinear spectral phase induced by optical parametric chirped-pulse amplification[J]. Physical Review A, 95(2017).
[30] ZHOU B J, MA J G, WANG J et al. Large magnitude, sign controllable, ultrafast group-velocity control via resonant cascaded nonlinearity in tandem[J]. Optics Express, 28, 29756-29765(2020).
Get Citation
Copy Citation Text
Bingjie ZHOU, Jingui MA, Peng YUAN, Jing WANG, Liejia QIAN. Ultrafast Group-velocity Control via Cascaded Optical Parametric Amplification (Invited)[J]. Acta Photonica Sinica, 2021, 50(8): 0850212
Category: Special Issue for Ultrafast Optics
Received: May. 25, 2021
Accepted: Jul. 4, 2021
Published Online: Sep. 1, 2021
The Author Email: Jingui MA (majg@sjtu.edu.cn)