Towards Solid-State Quantum Repeaters
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[1] E. Hahn,et al. Spin Echoes , 2011 .
[2] M. Holland,et al. Ultrafast control of donor-bound electron spins with single detuned optical pulses , 2008, 0806.4137.
[3] Ekert,et al. "Event-ready-detectors" Bell experiment via entanglement swapping. , 1993, Physical review letters.
[4] D. Loss,et al. Spin relaxation and decoherence of holes in quantum dots. , 2005, Physical review letters.
[5] C.-Y. Lu,et al. Observation of spin-dependent quantum jumps via quantum dot resonance fluorescence , 2010, Nature.
[6] Daniel Loss,et al. Phonon-Induced Decay of the Electron Spin in Quantum Dots , 2004 .
[7] H. Weinfurter,et al. Experimental Entanglement Swapping: Entangling Photons That Never Interacted , 1998 .
[8] Thierry Paul,et al. Quantum computation and quantum information , 2007, Mathematical Structures in Computer Science.
[9] P. Cochat,et al. Et al , 2008, Archives de pediatrie : organe officiel de la Societe francaise de pediatrie.
[10] Hyperfine interaction in a quantum dot: Non-Markovian electron spin dynamics , 2004, cond-mat/0405676.
[11] Kyo Inoue,et al. Quantum Cryptography with a Photon Turnstile Device , 2002 .
[12] Jelena Vucković,et al. Efficient source of single photons: a single quantum dot in a micropost microcavity. , 2002, Physical review letters.
[13] L A Coldren,et al. Nondestructive Optical Measurements of a Single Electron Spin in a Quantum Dot , 2006, Science.
[14] D. Loss,et al. Hybridization and spin decoherence in heavy-hole quantum dots. , 2010, Physical review letters.
[15] Control of electron spin decoherence caused by electron–nuclear spin dynamics in a quantum dot , 2007, cond-mat/0703690.
[16] Duncan G. Steel,et al. Optically controlled locking of the nuclear field via coherent dark-state spectroscopy , 2009, Nature.
[17] A. Badolato,et al. Observation of Faraday rotation from a single confined spin , 2006, quant-ph/0610110.
[18] Archil Avaliani,et al. Quantum Computers , 2004, ArXiv.
[19] K. Tamaki,et al. Differential phase shift-quantum key distribution , 2008, IEEE Communications Magazine.
[20] Richard Phillips Feynman,et al. Geometrical Representation of the Schrödinger Equation for Solving Maser Problems , 1957 .
[21] Charles H. Bennett,et al. Purification of noisy entanglement and faithful teleportation via noisy channels. , 1995, Physical review letters.
[22] Thaddeus D. Ladd,et al. Complete quantum control of a single quantum dot spin using ultrafast optical pulses , 2008, Nature.
[23] B. Garside. Optical Resonance and Two-level Atoms , 1975 .
[24] A. Greilich,et al. Spin coherence of holes in GaAs/(Al,Ga)As quantum wells. , 2007, Physical review letters.
[25] J. Linnett,et al. Quantum mechanics , 1975, Nature.
[26] Charles H. Bennett,et al. Concentrating partial entanglement by local operations. , 1995, Physical review. A, Atomic, molecular, and optical physics.
[27] Gilles Brassard,et al. Quantum Cryptography , 2005, Encyclopedia of Cryptography and Security.
[28] C. Testelin,et al. Hole―spin dephasing time associated with hyperfine interaction in quantum dots , 2009, 0903.3874.
[29] Yamamoto,et al. Quantum nondemolition measurement of the photon number via the optical Kerr effect. , 1985, Physical review. A, General physics.
[30] Wolfgang Dür,et al. Quantum Repeaters: The Role of Imperfect Local Operations in Quantum Communication , 1998 .
[31] S. Economou,et al. Proposal for optical U(1) rotations of electron spin trapped in a quantum dot , 2006 .
[32] L. A. Coldren,et al. Picosecond Coherent Optical Manipulation of a Single Electron Spin in a Quantum Dot , 2008, Science.
[33] M. Kamp,et al. Pulsed nuclear pumping and spin diffusion in a single charged quantum dot. , 2009, Physical review letters.
[34] Jian-Wei Pan,et al. Experimental demonstration of a BDCZ quantum repeater node , 2008, Nature.
[35] Hong,et al. Measurement of subpicosecond time intervals between two photons by interference. , 1987, Physical review letters.
[36] S. Sarma,et al. Quantum theory for electron spin decoherence induced by nuclear spin dynamics in semiconductor quantum computer architectures: Spectral diffusion of localized electron spins in the nuclear solid-state environment , 2005, cond-mat/0512323.
[37] L. P. Kouwenhoven,et al. Spin–orbit qubit in a semiconductor nanowire , 2010, Nature.
[38] E. Knill,et al. A scheme for efficient quantum computation with linear optics , 2001, Nature.
[39] Nicolas Gisin,et al. Quantum repeaters based on atomic ensembles and linear optics , 2009, 0906.2699.
[40] Charles H. Bennett,et al. Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels. , 1993, Physical review letters.
[41] K. Karrai,et al. Optical emission from a charge-tunable quantum ring , 2000, Nature.
[42] Charles H. Bennett,et al. Quantum cryptography without Bell's theorem. , 1992, Physical review letters.
[43] J. Cirac,et al. Quantum repeaters based on entanglement purification , 1998, quant-ph/9808065.
[44] Charles Santori,et al. Triggered single photons from a quantum dot , 2001, QELS 2001.
[45] Christian Schneider,et al. Ultrafast optical spin echo in a single quantum dot , 2010 .
[46] Yoshihisa Yamamoto,et al. Differential-phase-shift quantum key distribution using coherent light , 2003 .
[47] A. Miard,et al. Hole-nuclear spin interaction in quantum dots. , 2008, Physical review letters.
[48] A. Shabaev,et al. Mode Locking of Electron Spin Coherences in Singly Charged Quantum Dots , 2006, Science.
[49] Sae Woo Nam,et al. Quantum key distribution over a 40-dB channel loss using superconducting single-photon detectors , 2007, 0706.0397.
[50] Christian Schneider,et al. Ultrafast coherent control and suppressed nuclear feedback of a single quantum dot hole qubit , 2011, 1106.5676.