Cross-absorption as a limit to heralded silicon photon pair sources
暂无分享,去创建一个
Thomas F. Krauss | Benjamin J. Eggleton | Matthew J. Collins | Chunle Xiong | Sylvain Combrié | Gaëlle Lehoucq | Alfredo De Rossi | Chad A. Husko | Alex S. Clark | Isabella Rey | T. Krauss | B. Eggleton | G. Lehoucq | A. de Rossi | C. Xiong | M. Collins | A. Clark | C. Husko | I. Rey | S. Combrié
[1] Sylvain Combrié,et al. High quality GaInP nonlinear photonic crystals with minimized nonlinear absorption , 2009 .
[2] I. Sagnes,et al. Temporal solitons and pulse compression in photonic crystal waveguides , 2010 .
[3] S. Combrie,et al. Control of dispersion in photonic crystal waveguides using group symmetry theory , 2012 .
[4] B. Lanyon,et al. Towards quantum chemistry on a quantum computer. , 2009, Nature chemistry.
[5] Liam O'Faolain,et al. Four-wave mixing in photonic crystal waveguides: slow light enhancement and limitations. , 2011, Optics express.
[6] H. Driel,et al. Two-photon absorption and Kerr coefficients of silicon for 850–2200nm , 2007 .
[7] L J Wang,et al. Efficient generation of correlated photon pairs in a microstructure fiber. , 2005, Optics letters.
[8] T.D. Vo,et al. Integrated spatial multiplexing of heralded single-photon sources , 2013, Nature communications.
[9] Michal Lipson,et al. CMOS-compatible multiple-wavelength oscillator for on-chip optical interconnects , 2010 .
[10] Fatih Yaman,et al. Photon-pair generation in optical fibers through four-wave mixing: Role of Raman scattering and pump polarization , 2007 .
[11] Andrea Fiore,et al. Superconducting nanowire photon-number-resolving detector at telecommunication wavelengths , 2008 .
[12] John G. Rarity,et al. Intrinsically narrowband pair photon generation in microstructured fibres , 2011, 1102.4415.
[13] P. Colman,et al. Blue self-frequency shift of slow solitons and radiation locking in a line-defect waveguide. , 2012, Physical review letters.
[14] Thomas F. Krauss,et al. Multi-photon absorption limits to heralded single photon sources , 2013, Scientific Reports.
[15] Thomas F. Krauss,et al. Direct measurement of the group index of photonic crystal waveguides via Fourier transform spectral interferometry , 2007 .
[16] Benjamin J Eggleton,et al. Heralded single-photon source in a III-V photonic crystal. , 2013, Optics letters.
[17] M. Lipson,et al. Generation of correlated photons in nanoscale silicon waveguides. , 2006, Optics express.
[18] G. Agrawal,et al. Impact of two-photon absorption on self-phase modulation in silicon waveguides. , 2007, Optics letters.
[19] M. Lipson,et al. Quantum optics of spontaneous four-wave mixing in a silicon nitride microring resonator , 2011, CLEO: 2011 - Laser Science to Photonic Applications.
[20] Wei Zhang,et al. The impact of nonlinear losses in the silicon micro-ring cavities on CW pumping correlated photon pair generation. , 2014, Optics express.
[21] Dirk Englund,et al. Efficient generation of single and entangled photons on a silicon photonic integrated chip , 2011 .
[22] S. Massar,et al. Continuous wave photon pair generation in silicon-on-insulator waveguides and ring resonators. , 2009, Optics express.
[23] Hiroki Takesue,et al. Effects of multiple pairs on visibility measurements of entangled photons generated by spontaneous parametric processes , 2009, 0907.4535.
[24] Johannes Kofler,et al. Experimental generation of single photons via active multiplexing , 2010, 1007.4798.
[25] T. F. Krauss,et al. Characteristics of Correlated Photon Pairs Generated in Ultracompact Silicon Slow-Light Photonic Crystal Waveguides , 2012, IEEE Journal of Selected Topics in Quantum Electronics.
[26] C. Someda,et al. Theory of slow light enhanced four-wave mixing in photonic crystal waveguides. , 2010, Optics express.
[27] T. Krauss,et al. Slow-light enhanced correlated photon pair generation in a silicon photonic crystal waveguide. , 2011, Optics letters.
[28] A. Ekimov,et al. Quantum Size Effect in Three-Dimensional Microscopic Semiconductor Crystals , 1981, JETP Letters.
[29] A. Politi,et al. Silica-on-Silicon Waveguide Quantum Circuits , 2008, Science.
[30] Christian Kurtsiefer,et al. High efficiency entangled photon pair collection in type II parametric fluorescence , 2001, quant-ph/0101074.
[31] R. Hadfield. Single-photon detectors for optical quantum information applications , 2009 .
[32] W Tittel,et al. Fast and simple characterization of a photon pair source. , 2008, Optics express.
[33] Martijn de Sterke,et al. Slow light enhanced nonlinear optics in periodic structures , 2010 .
[34] David J. Hagan,et al. Sensitive mid-infrared detection in wide-bandgap semiconductors using extreme non-degenerate two-photon absorption , 2011 .
[35] N. Gisin,et al. Quantum Communication , 2007, quant-ph/0703255.
[36] Alberto Tosi,et al. Inherent polarization entanglement generated from a monolithic semiconductor chip , 2013, Scientific Reports.
[37] Sylvain Combrié,et al. Non-trivial scaling of self-phase modulation and three-photon absorption in III-V photonic crystal waveguides. , 2009, Optics express.
[38] Andrew D. Greentree,et al. Diamond for Quantum Computing , 2008, Science.
[39] B J Eggleton,et al. Quantum-correlated photon pair generation in chalcogenide As2S3 waveguides. , 2010, Optics express.
[40] Mario Martinelli,et al. Four-wave mixing and wavelength conversion in coupled-resonator optical waveguides , 2008 .
[41] F. Xia,et al. Heralded single photons from a silicon nanophotonic chip , 2012, 2012 Conference on Lasers and Electro-Optics (CLEO).
[42] B. Eggleton,et al. Low Raman-noise correlated photon-pair generation in a dispersion-engineered chalcogenide As2S3 planar waveguide. , 2012, Optics letters.
[43] Michal Lipson,et al. CMOS-compatible multiple wavelength oscillator for on-chip interconnects , 2009 .
[44] A. Eckstein,et al. Direct bell states generation on a III-V semiconductor chip at room temperature , 2013, CLEO: 2013.
[45] A. Migdall,et al. A versatile waveguide source of photon pairs for chip-scale quantum information processing. , 2009, Optics express.
[46] H. Takesue,et al. Frequency and Polarization Characteristics of Correlated Photon-Pair Generation Using a Silicon Wire Waveguide , 2010, IEEE Journal of Selected Topics in Quantum Electronics.
[47] J. Li,et al. Observation of soliton compression in silicon photonic crystals , 2014, Nature Communications.
[48] Jun Chen,et al. All-fiber photon-pair source for quantum communications: Improved generation of correlated photons. , 2004 .
[49] Hiroshi Fukuda,et al. Entanglement generation using silicon wire waveguide , 2008 .
[50] T. Krauss,et al. Systematic design of flat band slow light in photonic crystal waveguides. , 2008, Optics express.
[51] Mark Beck,et al. Comparing measurements of g (2) (0) performed with different coincidence detection techniques , 2007 .
[52] B. Soller,et al. High resolution optical frequency domain reflectometry for characterization of components and assemblies. , 2005, Optics express.
[53] Keiji Sasaki,et al. Beating the Standard Quantum Limit with Four-Entangled Photons , 2007, Science.
[54] Oskar Painter,et al. Self-induced optical modulation of the transmission through a high-Q silicon microdisk resonator. , 2006, Optics express.
[55] N. Matsuda,et al. Slow light enhanced correlated photon pair generation in photonic-crystal coupled-resonator optical waveguides. , 2013, Optics express.
[56] Sylvain Combrié,et al. Effect of multiphoton absorption and free carriers in slow-light photonic crystal waveguides. , 2011, Optics letters.
[57] D. Branning,et al. Tailoring single-photon and multiphoton probabilities of a single-photon on-demand source , 2002, quant-ph/0205140.
[58] A. Politi,et al. Quantum Walks of Correlated Photons , 2010, Science.
[59] Li Qian,et al. Compact highly-nonlinear AlGaAs waveguides for efficient wavelength conversion. , 2011, Optics express.
[60] G I Stegeman,et al. Two-photon absorption as a limitation to all-optical switching. , 1989, Optics letters.