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Superposition and entanglement, the quintessential characteristics of quantum physics, have been shown to provide communication, computation, and sensing capabilities that go beyond what classical physics will permit.
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J. H. Shapiro, S. Guha, and B. I. Erkmen, “Ultimate channel capacity of free-space optical communications,” J. Opt. Netw. 4
2005
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2006
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D. Bacon, I. L. Chuang, and A. W. Harrow, “Efficient quantum circuits for Schur and Clebsch-Gordan transforms,” Phys. Rev. Lett. 97,
2006
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K. M. R. Audenaert, J. Calsamiglia, R. Muñoz-Tapia, E. Bagan, Ll. Masanes, A. Acin, and F. Verstraete, “Discriminating states: The quantum Chernoff bound,” Phys. Rev. Lett. 98
2007
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S. Lloyd, “Enhanced sensitivity of photodetection via quantum illumination,” Science 321,
2008
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J. Calsamiglia, R. Muñoz-Tapia, Ll. Masanes, A. Acin, and E. Bagan, “Quantum Chernoff bound as a measure of distinguishability between density matrices: Application to qubit and Gaussian states,” Phys. Rev. A 77
2008
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S.-H. Tan, B. I. Erkmen, V. Giovannetti, S. Guha, S. Lloyd, L. Maccone, S. Pirandola, and J. H. Shapiro, “Quantum illumination with Gaussian States,” Phys. Rev. Lett. 101
2008
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S. Pirandola and S. Lloyd, “Computable bounds for the discrimination of Gaussian states ,” Phys. Rev. A 78
S. Boixo, T. F. Rennow, S. V. Isakov, Z. Wang, D. Wecker, D. A. Lidar, J. M. Martinis, and M. Troyer, “Evidence for quantum annealing with more than one hundred qubits,” Nat. Phys. 10
2014
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V. Giovannetti, R. García-Patrón, N. J. Cerf, and A. S. Holevo, “Ultimate classical communication rates of quantum optical channels,” Nat. Photon. 8
2014
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Z. Zhang, S. Mouradian, F. N. C. Wong, and J. H. Shapiro, “Entanglement-enhanced sensing in a lossy and noisy environment,” Phys. Rev. Lett. 114,
2015
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S. Barzanjeh, S. Guha, C. Weedbrook. D. Vitali, J. H. Shapiro, and S. Pirandola, “Microwave quantum illumination,” Phys. Rev. Lett. 114,
2015
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C. Macklin, K. O’Brien, D. Hover, M. E. Schwartz, V. Bolkhovsky, X. Zhang, W. D. Oliver, and I. Siddiqi, “A near-quantum-limited Josephson traveling-wave parametric amplifier,” Science 350
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2008
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J. H. Shapiro, “The quantum theory of optical communications,” IEEE J. Sel. Top. Quantum Electron. 15
2009
Cited alongside, same era.
J. H. Shapiro and S. Lloyd, “Quantum illumination versus coherent-state target detection,” New J. Phys 11,
2009
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S. Guha and B. I. Erkmen, “Gaussian-state quantum-illumination receivers for target detection,” Phys. Rev. A 80
2009
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J. H. Shapiro, “Defeating passive eavesdropping with quantum illumination,” Phys. Rev. A 80,
2009
Cited alongside, same era.
J. Calsamiglia, J. I. de Vicente, R. Muñoz-Tapia, and E. Bagan, “Local discrimination of mixed states,” Phys. Rev. Lett. 105
2010
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R. Nair, “Discriminating quantum-optical beam-splitter channels with number-diagonal signal states: Applications to quantum reading and target detection,” Phys. Rev. A 84
2011
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S. Bandyopadhyay, “More nonlocality with less purity,” Phys. Rev. Lett. 106
2011
Cited alongside, same era.
2015
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Q. Zhuang, Z. Zhang, J. Dove, F. N. C. Wong, and J. H. Shapiro, “Floodlight quantum key distribution: A practical route to gigabit-per-second secret-key rates,” Phys. Rev. A 94,
2016
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J. Biamonte, P. Wittek, N. Pancodtti, P. Rebentrost, N. Wiebe, and S. Lloyd, “Quantum machine learning,” Nature 549
2017
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Q. Zhuang, Z. Zhang, and J. H. Shapiro, “Optimum mixed-state discrimination for noisy entanglement-enhanced sensing,” Phys. Rev. Lett. 118
2017
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Q. Zhuang, Z. Zhang, and J. H. Shapiro, “Entanglement-enhanced Neyman-Pearson target detection using quantum illumination,” J. Opt. Soc. Am. B 34
2017
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Q. Zhuang, Z. Zhang, and J. H. Shapiro, “Quantum illumination for enhanced detection of Rayleigh-fading targets,” Phys. Rev. A 96
2017
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U. Las Heras, R. Di Candia, K. G. Fedorov, F. Deppe, M. Sanz, and E. Solano, “Quantum illumination reveals phase-shift induced cloaking,” Sci. Rep. 7
2017
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J. H. Shapiro, “Quantum illumination: From enhanced target detection to Gbps quantum key distribution,” in Conference on Lasers and Electro-Optics (CLEO), Technical Digest, Washington, DC, USA (OSA, 2017), paper FTu3F.1
2017
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S. Pirandola, B. Roy Bardhan, T. Gehring, C. Weedbrook, and S. Lloyd, “Advances in photonic quantum sensing,” Nat. Photonics 12
2018
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G. De Palma and J. Borregaard, “Minimum error probability of quantum illumination,” Phys. Rev. A 98
2018
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D. Luong, B. Balaji, C. W. S. Chang, V. Manjunath, A. Rao, and C. Wilson, “Microwave quantum radar: An experimental validation,” in Proc. 2018 IEEE International Carnahan Conference on Security Technology (ICCST), New York, NY, USA (IEEE, 2018), pp. 110–115
2018
Later among the works it cites.
Z. Zhang, C. Chen, Q. Zhuang, F. N. C. Wong, and J. H. Shapiro, “Experimental quantum key distribution at 1.3 gigabit-per-second secret-key rate over a 10 dB loss channel,” Quantum Sci. Technol. 3
2018
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D. G. England, B. Balaji, and B. J. Sussman, “Quantum-enhanced standoff detection using correlated photon pairs,” Phys. Rev. A 99
2019
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J. H. Shapiro, D. M. Boroson, P. B. Dixon, M. E. Grein, and S. A. Hamilton, “Quantum low probability of intercept,” J. Opt. Soc. Am. B 36
2019
Closest in time.