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The laws of physics play a crucial role in the security of quantum key distribution (QKD).
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The intuition behind BB84 has been anticipated by Wiesner’s “quantum money”: S. Wiesner, Sigact News 15
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Interestingly, the impossibility of bit commitment also derives from a deep physical law: the fact that the correlations obtained by measuring an entangled state do not arise from a time-ordered chain of events. Here, it implies that Bob cannot be sure that Alice has actually performed her measurement and thus committed to her bit. For the formal proof, see: H.-K. Lo, H.F. Chau, Phys. Rev. Lett. 78
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D. Gottesman, H.-K. Lo, N. Lütkenhaus, J. Preskill, Quant. Inf. Comput. 4
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W.-Y. Hwang, Phys. Rev. Lett. 91
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Y. Zhao, B. Qi, H.-K. Lo, Phys. Rev. A 77
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V. Scarani, H. Bechmann-Pasquinucci, N.J. Cerf, M. Dušek, N. Lütkenhaus, M. Peev, Rev. Mod. Phys. 81
2009
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H.-K. Lo, Y. Zhao, Encyclopedia of Complexity and Systems Science, Volume 8, pages 7265-7289 (Springer New York, 2009)
2009
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2006
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V. Makarov, A. Anisimov, J. Skaar, Phys. Rev. A 74
2006
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Superconductor-based TES detectors reach close to 100% quantum efficiency and have been used in some QKD experiments: P.A. Hiskett, D. Rosenberg, C.G. Peterson, R.J. Hughes, S.W. Nam, A.E. Lita, A.J. Miller, J.E. Nordholt, New J. Phys. 8
2006
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H.-K. Lo, J. Preskill, Quant. Inf. Comput. 8
2007
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A. Lamas-Linares and C. Kurtsiefer, Opt. Express 15
2007
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H. Inamori, N. Lütkenhaus, D. Mayers, Eur. Phys. J. D 41
2007
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M. Hayashi, Phys. Rev. A 76
2009
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C.-H.F. Fung, K. Tamaki, B. Qi, H.-K. Lo, X. Ma, Quantum Inf. Comput. 9
2009
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S. Pironio, A. Acín, N. Brunner, N. Gisin, S. Massar, V. Scarani, New J. Phys. 11
2009
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S. Massar, S. Pironio, J. Roland, B. Gisin, Phys. Rev. A 66
2009
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L. Lydersen, C. Wiechers, C. Wittmann, D. Elser, J. Skaar, V. Makarov, Nature Photonics 4
2010
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N. Gisin, S. Pironio, N. Sangouard, Phys. Rev. Lett. 105
2010
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I. Gerhardt, Q. Liu, A. Lamas-Linares, J. Skaar, C. Kurtsiefer, V. Makarov, Nature Communications 2
2011
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M. Curty, T. Moroder, Phys. Rev. A 84
2011
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