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Antipov A, Bell M, Yasar M, Mitin V, Scharmach W, Swihart M, et al. Luminescence of colloidal CdSe/ZnS nanoparticles: high sensitivity to solvent phase transitions. Nan Res Lett. 2011;6:7.
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Baek B, Lita AE, Verma V, Nam SW. Superconducting a-WxSi1–x nanowire single-photon detector with saturated internal quantum efficiency from visible to 1850 nm. Appl Phys Lett. 2011;98(25):3.
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Marsili F, Najafi F, Herder C, Berggren KK. Electrothermal simulation of superconducting nanowire avalanche photodetectors. Appl Phys Lett. 2011;98(9):3.
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Чулкова ГМ, Семенов АВ, Корнеев АА, Кардакова АИ, Аверьев НВ, Ан ПП, et al. Спектральная чувствительность сверхпроводникового однофотонного детектора. Ж радиоэлектрон. 2011;11:5.
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Dorenbos SN, Heeres RW, Driessen EFC, Zwiller V. Efficient and robust fiber coupling of superconducting single photon detectors. arXiv. 2011:6.
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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. Phys Rev Lett. 2011;107(17):4.
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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 17].arXiv:1102.5616v2 [cond-mat.supr-con]. Available from: https://arxiv.org/abs/1102.5616v2
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Wu MC. Optoelectronic tweezers. Nature Photon. 2011;5(6):322–4.
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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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Kawakami A, Saito S, Hyodo M. Fabrication of nano-antennas for superconducting Infrared detectors. IEEE Trans. Appl. Supercond.. 2011;21(3):632–5.
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