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We report high-fidelity state readout of a trapped ion qubit using a trap-integrated photon detector.
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A. Engel, K. Inderbitzin, A. Schilling, R. Lusche, A. Semenov, H.-W. Hubers, D. Henrich, M. Hofherr, K. Il’in, and M. Siegel, Temperature-Dependence of Detection Efficiency in NbN and TaN SNSPD, IEEE Trans. Appl. Supercond. 23
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2017
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M. Caloz, B. Korzh, N. Timoney, M. Weiss, S. Gariglio, R. J. Warburton, C. Schönenberger, J. Renema, H. Zbinden, and F. Bussières, Optically probing the detection mechanism in a molybdenum silicide superconducting nanowire single-photon detector, Appl. Phys. Lett. 110
2017
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S. Bourdeauducq, Whitequark, R. Jördens, Y. Sionneau, Enjoy-digital, C. Ballance, T. Harty, D. Slichter, Mntng, D. Nadlinger, R. Srinivas, J. Britton, Z. Smith, K. Stevens, F. Held, and D. Leibrandt, m-labs/artiq: 3.6, 10.5281/zenodo.1205217 (2018)
2018
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2019
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Y. Wan, D. Kienzler, S. D. Erickson, K. H. Mayer, T. R. Tan, J. J. Wu, H. M. Vasconcelos, S. Glancy, E. Knill, D. J. Wineland, A. C. Wilson, and D. Leibfried, Quantum gate teleportation between separated qubits in a trapped-ion processor, Science 364
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D. V. Reddy, A. E. Lita, S. W. Nam, R. P. Mirin, and V. B. Verma, Achieving 98% system efficiency at 1550 nm in superconducting nanowire single photon detectors, in Rochester Conf. Coherence Quantum Opt. (OSA, Washington, D.C., 2019) p. W2B.2
2019
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Y. Hochberg, I. Charaev, S.-W. Nam, V. Verma, M. Colangelo, and K. K. Berggren, Detecting sub-gev dark matter with superconducting nanowires, Phys. Rev. Lett. 123
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E. E. Wollman, V. B. Verma, A. E. Lita, W. H. Farr, M. D. Shaw, R. P. Mirin, and S. Woo Nam, Kilopixel array of superconducting nanowire single-photon detectors, Opt. Express 27
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S. L. Todaro, Improved State Detection and Transport of Trapped Ion Qubits for Scalable Quantum Computing , Ph.D. thesis, University of Colorado at Boulder (2020)
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