Active temporal and spatial multiplexing of photons
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Jeremy L O'Brien | Enrique Martín López | Damien Bonneau | Mark G. Thompson | Graham D. Marshall | Raffaele Santagati | G. Mendoza | J. O'Brien | D. Bonneau | E. Martin-Lopez | G. Mendoza | J. Munns | M. Piekarek | R. Santagati | G. Marshall | M. Thompson | K J W Munns | Lizzy Hemsley | Mateusz Piekarek | Enrique Martin Lopez | K. W. Munns | Lizzy Hemsley | M. G. Thompson | E. Hemsley | Graham D. Marshall | Jeremy L. O’Brien
[1] R. Morandotti,et al. New CMOS-compatible platforms based on silicon nitride and Hydex for nonlinear optics , 2013, Nature Photonics.
[2] Peter P. Rohde,et al. Simple scheme for universal linear-optics quantum computing with constant experimental complexity using fiber loops , 2014, 1410.0433.
[3] Hideo Mabuchi,et al. A coherent perceptron for all-optical learning , 2015, 1501.01608.
[4] S. Polyakov,et al. : Single-photon sources and detectors , 2011 .
[5] Robert J. A. Francis-Jones,et al. Temporal Loop Multiplexing: A resource efficient scheme for multiplexed photon-pair sources , 2015, 1503.06178.
[6] T. Rudolph,et al. Resource-efficient linear optical quantum computation. , 2004, Physical review letters.
[7] Kevin McCusker,et al. Low-loss all-optical quantum switching , 2013, 2013 IEEE Photonics Society Summer Topical Meeting Series.
[8] P. Knight,et al. Introductory quantum optics , 2004 .
[9] A. Melloni,et al. Breakthroughs in Photonics 2013: Toward Feedback-Controlled Integrated Photonics , 2014, IEEE Photonics Journal.
[10] Marco Barbieri,et al. Single-photon device requirements for operating linear optics quantum computing outside the post-selection basis , 2010, 1012.1868.
[11] T D Vo,et al. Bidirectional multiplexing of heralded single photons from a silicon chip. , 2013, Optics letters.
[12] Hugo Cable,et al. Efficient generation of large number-path entanglement using only linear optics and feed-forward. , 2007, Physical review letters.
[13] Kerry J. Vahala,et al. Ultra-Low-Loss Optical Delay Line on a Silicon Chip , 2011 .
[14] Benjamin J. Eggleton,et al. Hybrid photonic circuit for multiplexed heralded single photons , 2014, 1402.7202.
[15] M P Almeida,et al. Reducing multi-photon rates in pulsed down-conversion by temporal multiplexing. , 2011, Optics express.
[16] Peter P Rohde,et al. Scalable boson sampling with time-bin encoding using a loop-based architecture. , 2014, Physical review letters.
[17] Ian A. Walmsley,et al. Eliminating frequency and space-time correlations in multiphoton states , 2001 .
[18] I Cristiani,et al. Integrated nonlinear Mach Zehnder for 40 Gbit/s all-optical switching. , 2013, Optics express.
[19] Jeffrey H Shapiro,et al. On-demand single-photon generation using a modular array of parametric downconverters with electro-optic polarization controls. , 2007, Optics letters.
[20] J Fan,et al. Invited review article: Single-photon sources and detectors. , 2011, The Review of scientific instruments.
[21] Dirk Englund,et al. Efficient generation of single and entangled photons on a silicon photonic integrated chip , 2011 .
[22] O. Painter,et al. Ultra-low-loss optical delay line on a silicon chip , 2012, Nature Communications.
[23] F. Marsili,et al. Detecting single infrared photons with 93% system efficiency , 2012, 1209.5774.
[24] O. Alibart,et al. High-visibility two-photon interference at a telecom wavelength using picosecond-regime separated sources , 2009, 0912.5312.
[25] T.D. Vo,et al. Integrated spatial multiplexing of heralded single-photon sources , 2013, Nature communications.
[26] Jian-Wei Pan,et al. Demonstration of a scheme for the generation of ``event-ready'' entangled photon pairs from a single-photon source , 2008 .
[27] Todd B. Pittman,et al. Periodic single-photon source and quantum memory , 2004, SPIE Optics + Photonics.
[28] A. Gilchrist,et al. Multiplexed single-photon-state preparation using a fiber-loop architecture , 2015, 1503.03546.
[29] Johannes Kofler,et al. Experimental generation of single photons via active multiplexing , 2010, 1007.4798.
[30] Ying Li,et al. Resource costs for fault-tolerant linear optical quantum computing , 2015, 1504.02457.
[31] Miguel A. Larotonda,et al. Multiplexing photons with a binary division strategy , 2014 .
[32] P. Kwiat,et al. Efficient optical quantum state engineering. , 2009, Physical review letters.
[33] Damien Bonneau,et al. Effect of loss on multiplexed single-photon sources , 2014, 1409.5341.
[34] D. Branning,et al. Tailoring single-photon and multiphoton probabilities of a single-photon on-demand source , 2002, quant-ph/0205140.
[35] Ryan Hamerly,et al. Advantages of coherent feedback for cooling quantum oscillators. , 2012, Physical review letters.
[36] Mercedes Gimeno-Segovia,et al. From Three-Photon Greenberger-Horne-Zeilinger States to Ballistic Universal Quantum Computation. , 2014, Physical review letters.
[37] T. Rudolph,et al. How good must single photon sources and detectors be for efficient linear optical quantum computation? , 2007, Physical review letters.
[38] C. M. Natarajan,et al. On-chip quantum interference between silicon photon-pair sources , 2013, Nature Photonics.
[39] Minoru Ohtsuka,et al. Low-loss, flat-topped and spectrally uniform silicon-nanowire-based 5th-order CROW fabricated by ArF-immersion lithography process on a 300-mm SOI wafer. , 2013, Optics express.
[40] E. Knill,et al. A scheme for efficient quantum computation with linear optics , 2001, Nature.
[41] C. Silberhorn,et al. Limits on the deterministic creation of pure single-photon states using parametric down-conversion , 2011, 1111.4095.
[42] Heterogeneous microring and Mach-Zehnder lithium niobate electro-optical modulators on silicon , 2015, 2015 Conference on Lasers and Electro-Optics (CLEO).