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Maslennikov S. RF heating efficiency of the terahertz superconducting hot-electron bolometer. arXiv [Internet]. 2014 [cited 2024 Aug 8];1404.5276:1–4;arXiv:1404.5276. Available from: http://arxiv.org/abs/1404.5276
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Pernice W, Schuck C, Minaeva O, Li M, Goltsman GN, Sergienko AV, et al. High speed and high efficiency travelling wave single-photon detectors embedded in nanophotonic circuits [Internet]. Vol 1108.5299.; 2012 [cited 2024 Aug 8].arXiv:1108.5299v2 [physics.optics]. Available from: https://arxiv.org/abs/1108.5299v2
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Sprengers JP, Gaggero A, Sahin D, Nejad SJ, Mattioli F, Leoni R, et al. Waveguide single-photon detectors for integrated quantum photonic circuits. In: arXiv. Vol 1108.5107.; 2011. p. 1–11.
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Ovchinnikov YN, Varlamov AA. Fluctuation-dissipative phenomena in a narrow superconducting channel carrying current below critical. arXiv. 2009;0910.2659v1:1–4.
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Jian Wei, David Olaya, Boris Karasik, Sergey Pereverzev, Andrei Sergeev, Michael Gershenson. Ultra-sensitive hot-electron nanobolometers for terahertz astrophysics. ArXiv e-prints. 2007;710.
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Pernice W, Schuck C, Li M, Goltsman GN, Sergienko AV, Tang HX. High speed travelling wave single-photon detectors with near-unity quantum efficiency. arXiv. 2011:1–14.
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Beck M, Klammer M, Lang S, Leiderer P, Kabanov VV, Gol’tsman GN, et al. Energy-gap dynamics of superconducting NbN thin films studied by time-resolved terahertz spectroscopy [Internet].; 2011 [cited 2024 Aug 8].arXiv:1102.5616v2 [cond-mat.supr-con]. Available from: https://arxiv.org/abs/1102.5616v2
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Steudle GA, Schietinger S, Höckel D, Dorenbos SN, Zwiller V, Benson O. Quantum nature of light measured with a single detector. arXiv. 2011:7.
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Sprengers JP, Gaggero A, Sahin D, Nejad SJ, Mattioli F, Leoni R, et al. Waveguide single-photon detectors for integrated quantum photonic circuits. arXiv. 2011:11.
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Engel A, Aeschbacher A, Inderbitzin K, Schilling A, Il'in K, Hofherr M, et al. Tantalum nitride superconducting single-photon detectors with low cut-off energy. arXiv. 2011:9.
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