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We propose and theoretically analyze a teleportation-based scheme for high-fidelity noiseless quantum amplification of coherent states of light.
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T. C. Ralph and A. P. Lund, in Quantum Communication Measurement and Computing, edited by A. Lvovsky, (AIP, New York, 2009), pp. 155–160
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J. Fiurášek, “Engineering quantum operations on traveling light beams by multiple photon addition and subtraction,” Phys. Rev. A 80
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2010
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2010
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2010
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A. Zavatta, J. Fiurśšek, and M. Bellini, “A high-fidelity noiseless amplifier for quantum light states,” Nature Photon. 5
N. A. McMahon, A. P. Lund, and T. C. Ralph, “Optimal architecture for a nondeterministic noiseless linear amplifier,” Phys. Rev. A 89
2014
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J. Bernu, S. Armstrong, T. Symul, T. C. Ralph, and P. K. Lam, “Theoretical analysis of an ideal noiseless linear amplifier for Einstein–Podolsky–Rosen entanglement distillation,” J. Phys. B: At. Mol. Opt. Phys. 47
2014
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2014
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2014
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J. Y. Haw, J. Zhao, J. Dias, S. M. Assad, M. Bradshaw, R. Blandino, T. Symul, T. C. Ralph and P. K. Lam, “Surpassing the no-cloning limit with a heralded hybrid linear amplifier for coherent states,” Nature Commun. 7
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2011
Cited alongside, same era.
T. C. Ralph, “Quantum error correction of continuous-variable states against Gaussian noise,” Phys. Rev. A 84
2011
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M. Mehmet, S. Ast, T. Eberle, S. Steinlechner, H. Vahlbruch, and R. Schnabel, “Squeezed light at 1550 nm with a quantum noise reduction of 12.3 dB,” Opt. Express 19
2011
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C. I. Osorio, N. Bruno, N. Sangouard, H. Zbinden, N. Gisin, and R. T. Thew, “Heralded photon amplification for quantum communication,” Phys. Rev. A 86
2012
Cited alongside, same era.
J. Fiurášek and N. J. Cerf, “Gaussian postselection and virtual noiseless amplification in continuous-variable quantum key distribution,” Phys. Rev. A 86
2012
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M. Mičuda, I. Straka, M. Miková, M. Dušek, N. J. Cerf, J. Fiurášek, and M. Ježek, “Noiseless Loss Suppression in Quantum Optical Communication,” Phys. Rev. Lett. 109
2012
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S. Pandey, Z. Jiang, J. Combes, and C. M. Caves, “Quantum limits on probabilistic amplifiers,” Phys. Rev. A 88
2013
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S. Kocsis, G. Y. Xiang, T. C. Ralph G. J. Pryde, “Heralded noiseless amplification of a photon polarization qubit,” Nature Phys. 9
2013
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2016
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H. Vahlbruch, M. Mehmet, K. Danzmann, and R. Schnabel, “Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency,” Phys. Rev. Lett. 117
2016
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L. S. Costanzo, A. S. Coelho, N. Biagi, J. Fiurášek, M. Bellini, and A. Zavatta, “Measurement-Induced Strong Kerr Nonlinearity for Weak Quantum States of Light,” Phys. Rev. Lett. 119
2017
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W. Asavanant, K. Nakashima, Y. Shiozawa, J.-I. Yoshikawa, and A. Furusawa, “Generation of highly pure Schrödinger’s cat states and real-time quadrature measurements via optical filtering,” Opt. Express 25
2017
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H. Adnane, M. Bina, F. Albarelli, A. Gharbi, and M. G. A. Paris, “Quantum state engineering by nondeterministic noiseless linear amplification,” Phys. Rev. A 99
2019
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H. Adnane and M. G. A. Paris, “Teleportation improvement by non-deterministic noiseless linear amplification,” Quantum Inf. Comput. 19
2019
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M Mehmet and H Vahlbruch, “High-efficiency squeezed light generation for gravitational wave detectors,” Class. Quantum Grav. 36(1) 015014 (2019)
2019
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M. S. Winnel, N. Hosseinidehaj, and T. C. Ralph, “Generalized quantum scissors for noiseless linear amplification,” Phys. Rev. A 102
2020
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M. Walschaers, V. Parigi, and N. Treps, “Practical Framework for Conditional Non-Gaussian Quantum State Preparation,” PRX Quantum 1
2020
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D. V. Reddy, R. R. Nerem, S. Woo Nam, R. P. Mirin, and V. B. Verma, “ Superconducting nanowire single-photon detectors with 98 % 98\% system detection efficiency at 1550 nm,” Optica 7
2020
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2020
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