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High-gain optical parametric amplification is an important nonlinear process used both as a source of coherent infrared light and as a source of nonclassical light.
D. D. Crouch, “Broadband squeezing via degenerate parametric amplification,” Physical Review A 38
1988
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M. D. Reid and L. Krippner, “Macroscopic quantum superposition states in nondegenerate parametric oscillation,” Physical Review A 47
1993
Earlier work this paper cites.
P. D. Trapani, A. Andreoni, C. Solcia, P. Foggi, R. Danielius, A. Dubietis, and A. Piskarskas, “Matching of group velocities in three-wave parametric interaction with femtosecond pulses and application to traveling-wave generators,” J. Opt. Soc. Am. B 12
1995
Earlier work this paper cites.
A. Galvanauskas, M. Arbore, M. Fejer, M. Fermann, and D. Harter, “Fiber-laser-based femtosecond parametric generator in bulk periodically poled LiNbO 3 ,” Opt. Lett. 22
1997
Earlier work this paper cites.
T. Südmeyer, F. Brunner, R. Paschotta, T. Usami, H. Ito, M. Nakamura, K. Kitamura, and U. Keller, “Femtosecond optical parametric generation (OPG) in periodically poled stoichiometric LiTaO 3 with > > 1 W average power,” in Conference on Lasers and Electro-Optics, (Optical Society of America, 2002), p. CTuO4
2002
Earlier work this paper cites.
X. Xie, A. M. Schober, C. Langrock, R. V. Roussev, J. R. Kurz, and M. M. Fejer, “Picojoule threshold, picosecond optical parametric generation in reverse proton-exchanged lithium niobate waveguides,” J. Opt. Soc. Am. B 21
2004
Earlier work this paper cites.
A. U’Ren, C. Silberhorn, R. Erdmann, K. Banaszek, W. Grice, I. A. Walmsley, and M. Raymer, “Generation of pure-state single-photon wavepackets by conditional preparation based on spontaneous parametric downconversion,” arXiv:quant-ph/0611019 (2005)
2005
Earlier work this paper cites.
S. Marchese, E. Innerhofer, R. Paschotta, S. Kurimura, K. Kitamura, G. Arisholm, and U. Keller, “Room temperature femtosecond optical parametric generation in MgO-doped stoichiometric LiTaO 3 ,” Applied Physics B 81
2005
Earlier work this paper cites.
P. S. Kuo, K. L. Vodopyanov, M. M. Fejer, D. M. Simanovskii, X. Yu, J. S. Harris, D. Bliss, and D. Weyburne, “Optical parametric generation of a mid-infrared continuum in orientation-patterned GaAs,” Opt. Lett. 31
2006
Earlier work this paper cites.
P. Zhao, B. Zhang, E. Li, R. Zhou, D. Xu, Y. Lu, T. Zhang, F. Ji, X. Zhu, P. Wang, and J. Yao, “Experimental study on a high conversion efficiency, low threshold, high-repetition-rate periodically poled lithium niobate optical parametric generator,” Opt. Express 14
2006
Earlier work this paper cites.
S. E. Harris, “Chirp and compress: Toward single-cycle biphotons,” Physical Review Letters 98
2007
Earlier work this paper cites.
P. J. Mosley, J. S. Lundeen, B. J. Smith, P. Wasylczyk, A. B. U’Ren, C. Silberhorn, and I. A. Walmsley, “Heralded generation of ultrafast single photons in pure quantum states,” Physical Review Letters 100
2008
Earlier work this paper cites.
O. Prakash, H.-H. Lim, B.-J. Kim, K. Pandiyan, M. Cha, and B. K. Rhee, “Collinear broadband optical parametric generation in periodically poled lithium niobate crystals by group velocity matching,” Appl. Phys. B 92
2008
Earlier work this paper cites.
C. Manzoni, G. Cirmi, D. Brida, S. De Silvestri, and G. Cerullo, “Optical-parametric-generation process driven by femtosecond pulses: Timing and carrier-envelope phase properties,” Phys. Rev. A 79
2009
Cited alongside, same era.
J. R. Schwesyg, C. R. Phillips, K. Ioakeimidi, M. C. C. Kajiyama, M. Falk, D. H. Jundt, K. Buse, and M. M. Fejer, “Suppression of mid-infrared light absorption in undoped congruent lithium niobate crystals,” Opt. Lett. 35
2010
Cited alongside, same era.
O. Chalus, P. G. Schunemann, K. T. Zawilski, J. Biegert, and M. Ebrahim-Zadeh, “Optical parametric generation in CdSiP 2 ,” Opt. Lett. 35
2010
Cited alongside, same era.
C. R. Phillips, C. Langrock, J. S. Pelc, M. M. Fejer, I. Hartl, and M. E. Fermann, “Supercontinuum generation in quasi-phasematched waveguides,” Opt. Express 19
2011
Cited alongside, same era.
C. Wang, C. Langrock, A. Marandi, M. Jankowski, M. Zhang, B. Desiatov, M. M. Fejer, and M. Lončar, “Ultrahigh-efficiency wavelength conversion in nanophotonic periodically poled lithium niobate waveguides,” Optica 5
2018
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2019
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A. Rao, K. Abdelsalam, T. Sjaardema, A. Honardoost, G. F. Camacho-Gonzalez, and S. Fathpour, “Actively-monitored periodic-poling in thin-film lithium niobate photonic waveguides with ultrahigh nonlinear conversion efficiency of 4600 %w-1cm-2,” Optics Express 27
2019
Later among the works it cites.
A. Boes, L. Chang, M. Knoerzer, T. G. Nguyen, J. D. Peters, J. E. Bowers, and A. Mitchell, “Improved second harmonic performance in periodically poled lnoi waveguides through engineering of lateral leakage,” Opt. Express 27
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M. Levenius, V. Pasiskevicius, F. Laurell, and K. Gallo, “Ultra-broadband optical parametric generation in periodically poled stoichiometric LiTaO 3 ,” Opt. Express 19
2011
Cited alongside, same era.
A. Schliesser, N. Picqué, and T. W. Hänsch, “Mid-infrared frequency combs,” Nature Photonics 6
2012
Cited alongside, same era.
S. C. Kumar, M. Jelínek, M. Baudisch, K. T. Zawilski, P. G. Schunemann, V. Kubeček, J. Biegert, and M. Ebrahim-Zadeh, “Tunable, high-energy, mid-infrared, picosecond optical parametric generator based on CdSiP 2 ,” Opt. Express 20
2012
Cited alongside, same era.
H. Linnenbank and S. Linden, “High repetition rate femtosecond double pass optical parametric generator with more than 2 W tunable output in the NIR,” Opt. Express 22
2014
Cited alongside, same era.
R. Piccoli, F. Pirzio, A. Agnesi, V. Badikov, D. Badikov, G. Marchev, V. Panyutin, and V. Petrov, “Narrow bandwidth, picosecond, 1064 nm pumped optical parametric generator for the mid-IR based on HgGa 2 S 4 ,” Opt. Lett. 39
2014
Cited alongside, same era.
L. Xu, H.-Y. Chan, S. u. Alam, D. J. Richardson, and D. P. Shepherd, “High-energy, near- and mid-IR picosecond pulses generated by a fiber-MOPA-pumped optical parametric generator and amplifier,” Opt. Express 23
2015
Cited alongside, same era.
H. Linnenbank, T. Steinle, and H. Giessen, “Narrowband cw injection seeded high power femtosecond double-pass optical parametric generator at 43 MHz: Gain and noise dynamics,” Opt. Express 24
2016
Cited alongside, same era.
A. Aadhi and G. K. Samanta, “High power, high repetition rate, tunable broadband mid-IR source based on single-pass optical parametric generation of a femtosecond laser,” Opt. Lett. 42
2017
Cited alongside, same era.
2019
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Y.-C. Lin, Y. Nabekawa, and K. Midorikawa, “Optical parametric amplification of sub-cycle shortwave infrared pulses,” Nature Communications 11
2020
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T. Kashiwazaki, N. Takanashi, T. Yamashima, T. Kazama, K. Enbutsu, R. Kasahara, T. Umeki, and A. Furusawa, “Continuous-wave 6-db-squeezed light with 2.5-thz-bandwidth from single-mode ppln waveguide,” APL Photonics 5
2020
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J. Zhao, C. Ma, M. Rüsing, and S. Mookherjea, “High quality entangled photon pair generation in periodically poled thin-film lithium niobate waveguides,” Phys. Rev. Lett. 124
2020
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M. Jankowski, C. Langrock, B. Desiatov, A. Marandi, C. Wang, M. Zhang, C. R. Phillips, M. Lončar, and M. M. Fejer, “Ultrabroadband nonlinear optics in nanophotonic periodically poled lithium niobate waveguides,” Optica 7
2020
Later among the works it cites.
M. Jankowski, J. Mishra, and M. M. Fejer, “Dispersion-engineered χ ( 2 ) \chi^{(2)} nanophotonics: a flexible tool for nonclassical light,” J. Phys. Photonics 3
2021
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2021
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C. Hu, A. Pan, T. Li, X. Wang, Y. Liu, S. Tao, C. Zeng, and J. Xia, “High-efficient coupler for thin-film lithium niobate waveguide devices,” Opt. Express 29
2021
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J. Mishra, T. P. McKenna, E. Ng, H. S. Stokowski, M. Jankowski, C. Langrock, D. Heydari, H. Mabuchi, M. M. Fejer, and A. H. Safavi-Naeini, “Mid-infrared nonlinear optics in thin-film lithium niobate on sapphire,” Optica 8
2021
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