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Single photon detection is a key resource for sensing at the quantum limit and the enabling technology for measurement based quantum computing.
A. I. Lvovsky, H. Hansen, T. Aichele, O. Benson, J. Mlynek, and S. Schiller, “Quantum state reconstruction of the single-photon fock state,” Phys. Rev. Lett
2001
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R. Raussendorf and H. J. Briegel, “A one-way quantum computer,” Physical Review Letters
2001
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A. Ourjoumtsev, R. Tualle-Brouri, J. Laurat, and P. Grangier, “Generating optical schrödinger kittens for quantum information processing,” Science
2006
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H. J. Kimble, “The quantum internet,” Nature
2008
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Review Article
R. H. Hadfield, “Single-photon detectors for optical quantum information applications,” Nature Photonics · 2009
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F. Helmer, M. Mariantoni, E. Solano, and F. Marquardt, “Quantum nondemolition photon detection in circuit qed and the quantum zeno effect,” Physical Review A
2009
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2009
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2011
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K. W. Murch, U. Vool, D. Zhou, S. J. Weber, S. M. Girvin, and I. Siddiqi, “Cavity-assisted quantum bath engineering,” Phys. Rev. Lett
2012
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S. Lamoreaux, K. van Bibber, K. Lehnert, and G. Carosi, “Analysis of single-photon and linear amplifier detectors for microwave cavity dark matter axion searches,” Physical Review D
2013
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S. Shankar, M. Hatridge, Z. Leghtas, K. M. Sliwa, A. Narla, U. Vool, S. M. Girvin, L. Frunzio, M. Mirrahimi, and M. H. Devoret, “Autonomously stabilized entanglement between two superconducting quantum bits,” Nature
2013
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Y. Lin, J. P. Gaebler, F. Reiter, T. R. Tan, R. Bowler, A. S. Sorensen, D. Leibfried, and D. J. Wineland, “Dissipative production of a maximally entangled steady state of two quantum bits,” Nature
2013
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Z. Leghtas, G. Kirchmair, B. Vlastakis, R. J. Schoelkopf, M. H. Devoret, and M. Mirrahimi, “Hardware-Efficient Autonomous Quantum Memory Protection,” Physical Review Letters
2013
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G. Kirchmair, B. Vlastakis, Z. Leghtas, S. E. Nigg, H. Paik, E. Ginossar, M. Mirrahimi, L. Frunzio, S. M. Girvin, and R. J. Schoelkopf, “Observation of quantum state collapse and revival due to the single-photon kerr effect,” Nature
2013
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O. Morin, C. Fabre, and J. Laurat, “Experimentally accessing the optimal temporal mode of traveling quantum light states,” Phys. Rev. Lett
2013
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C. Monroe, R. Raussendorf, A. Ruthven, K. R. Brown, P. Maunz, L.-M. Duan, and J. Kim, “Large-scale modular quantum-computer architecture with atomic memory and photonic interconnects,” Phys. Rev. A
2014
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S. R. Sathyamoorthy, L. Tornberg, A. F. Kockum, B. Q. Baragiola, J. Combes, C. M. Wilson, T. M. Stace, and G. Johansson, “Quantum nondemolition detection of a propagating microwave photon,” Physical review letters
2014
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S. Barzanjeh, S. Guha, C. Weedbrook, D. Vitali, J. H. Shapiro, and S. Pirandola, “Microwave quantum illumination,” Physical review letters
2015
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P. A. Morris, R. S. Aspden, J. E. Bell, R. W. Boyd, and M. J. Padgett, “Imaging with a small number of photons,” Nature communications
P. Haikka, Y. Kubo, A. Bienfait, P. Bertet, and K. Mølmer, “Proposal for detecting a single electron spin in a microwave resonator,” Physical Review A
2017
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E. Kapit, “The upside of noise: engineered dissipation as a resource in superconducting circuits,” Quantum Science and Technology
2017
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P. C. Humphreys, N. Kalb, P. Jaco, J. Morits, R. N. Schouten, R. F. L. Vermeulen, D. J. Twitchen, M. Markham, and R. Hanson, “quantum network,” Nature
2018
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S.-K. Liao, W.-Q. Cai, J. Handsteiner, B. Liu, J. Yin, L. Zhang, D. Rauch, M. Fink, J.-G. Ren, W.-Y. Liu, Y. Li, Q. Shen, Y. Cao, F.-Z. Li, J.-F. Wang, Y.-M. Huang, L. Deng, T. Xi, L. Ma, T. Hu, L. Li, N.-L. Liu, F. Koidl, P. Wang, Y.-A. Chen, X.-B. Wang, M. Steindorfer, G. Kirchner, C.-Y. Lu, R. Shu, R. Ursin, T. Scheidl, C.-Z. Peng, J.-Y. Wang, A. Zeilinger, and J.-W. Pan, “Satellite-relayed intercontinental quantum network,” Phys. Rev. Lett
2018
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2015
Cited alongside, same era.
A. Metelmann and A. A. Clerk, “Nonreciprocal photon transmission and amplification via reservoir engineering,” Phys. Rev. X
2015
Cited alongside, same era.
K. M. Sliwa, M. Hatridge, A. Narla, S. Shankar, L. Frunzio, R. J. Schoelkopf, and M. H. Devoret, “Reconfigurable josephson circulator/directional amplifier,” Phys. Rev. X
2015
Cited alongside, same era.
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
2015
Cited alongside, same era.
Z. Leghtas, S. Touzard, I. M. Pop, A. Kou, B. Vlastakis, A. Petrenko, K. M. Sliwa, A. Narla, S. Shankar, M. J. Hatridge, M. Reagor, L. Frunzio, R. J. Schoelkopf, M. Mirrahimi, and M. H. Devoret, “Confining the state of light to a quantum manifold by engineered two-photon loss,” Science
2015
Cited alongside, same era.
2015
Cited alongside, same era.
A. Narla, S. Shankar, M. Hatridge, Z. Leghtas, K. M. Sliwa, E. Zalys-Geller, S. O. Mundhada, W. Pfaff, L. Frunzio, R. J. Schoelkopf, and M. H. Devoret, “Robust concurrent remote entanglement between two superconducting qubits,” Phys. Rev. X
2016
Cited alongside, same era.
P. Krantz, A. Bengtsson, M. Simoen, S. Gustavsson, V. Shumeiko, W. D. Oliver, C. M. Wilson, P. Delsing, and J. Bylander, “Single-shot read-out of a superconducting qubit using a Josephson parametric oscillator,” Nature Communications
2016
Cited alongside, same era.
Later among the works it cites.
J. Leppäkangas, M. Marthaler, D. Hazra, S. Jebari, R. Albert, F. Blanchet, G. Johansson, and M. Hofheinz, “Multiplying and detecting propagating microwave photons using inelastic cooper-pair tunneling,” Physical Review A
2018
Later among the works it cites.
B. Royer, A. L. Grimsmo, A. Choquette-Poitevin, and A. Blais, “Itinerant microwave photon detector,” Phys. Rev. Lett
2018
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K. S. Chou, J. Z. Blumoff, C. S. Wang, P. C. Reinhold, C. J. Axline, Y. Y. Gao, L. Frunzio, M. H. Devoret, L. Jiang, and R. J. Schoelkopf, “Deterministic teleportation of a quantum gate between two logical qubits,” Nature
2018
Later among the works it cites.
S. Touzard, A. Kou, N. E. Frattini, V. V. Sivak, S. Puri, A. Grimm, L. Frunzio, S. Shankar, and M. H. Devoret, “Gated conditional displacement readout of superconducting qubits,” 2018
2018
Later among the works it cites.
A. Opremcak, I. V. Pechenezhskiy, C. Howington, B. G. Christensen, M. A. Beck, E. Leonard, J. Suttle, C. Wilen, K. N. Nesterov, G. J. Ribeill, T. Thorbeck, F. Schlenker, M. G. Vavilov, B. L. T. Plourde, and R. McDermott, “Measurement of a superconducting qubit with a microwave photon counter,” Science
2018
Later among the works it cites.
S. Kono, K. Koshino, Y. Tabuchi, A. Noguchi, and Y. Nakamura, “Quantum non-demolition detection of an itinerant microwave photon,” Nature Physics
2018
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J.-C. Besse, S. Gasparinetti, M. C. Collodo, T. Walter, P. Kurpiers, M. Pechal, C. Eichler, and A. Wallraff, “Single-shot quantum nondemolition detection of individual itinerant microwave photons,” Phys. Rev. X
2018
Later among the works it cites.
R. Lescanne, L. Verney, Q. Ficheux, M. H. Devoret, B. Huard, M. Mirrahimi, and Z. Leghtas, “Escape of a driven quantum josephson circuit into unconfined states,” Phys. Rev. Applied
2019
Closest in time.
L. Verney, R. Lescanne, M. H. Devoret, Z. Leghtas, and M. Mirrahimi, “Structural instability of driven josephson circuits prevented by an inductive shunt,” Phys. Rev. Applied
2019
Closest in time.