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Lee BG, Doany FE, Assefa S, Green W, Yang M, Schow CL, et al. 20-μm-pitch eight-channel monolithic fiber array coupling 160 Gb/s/channel to silicon nanophotonic chip. In: Conf. OFC/NFOEC.; 2010. p. 1–3.
Abstract: A multichannel tapered coupler interfacing standard 250-μm-pitch low-NA polarization-maintaining fiber arrays with ultra-dense 20-μm-pitch high-NA silicon waveguides is designed, fabricated, and tested, demonstrating coupling losses below 1 dB and injection bandwidths of 160 Gb/s/channel.
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Churikov VM, Kopp VI, Genack AZ. Chiral diffraction gratings in twisted microstructured fibers. Opt Lett. 2010;35(3):342–4.
Abstract: We observed dips in transmission spectra of uniformly twisted pure-silica microstructured fibers. The spectral positions of the dips and their insensitivity to the surrounding medium are consistent with Bragg diffraction from the helical structure. The reproducibility of the variation of the dip wavelength with temperature up to 1000°C makes the chiral diffraction grating suitable for high-temperature sensing.
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Kataoka T, Kajikawa K, Kitagawa J, Kadoya Y, Takemura Y. Improved sensitivity of terahertz detection by GaAs photoconductive antennas excited at 1560 nm. Appl Phys Lett. 2010;97:201110 (1–3).
Abstract: The terahertz detection by photoconductive antennas (PCAs) based on low-temperature grown (LTG) GaAs with 1.5 μm pulse excitation was revisited. We found that the detection efficiency can be improved by a factor of 10 (20 dB) by reducing the excitation spot size and the gap length of the PCA, maintaining the low noise feature of the PCA on LTG GaAs. As a result, the signal-to-noise ratio higher than 50 dB was obtained at a reasonable incident power of 9.5 mW, suggesting that the scheme is promising for the detection of terahertz waves in practical time domain systems.
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Diana Prado Lopes Aude. Modeling superconductors using surface impedance technique.; 2010.
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Корнеева ЮП, Флоря ИН, Корнеев АА, Гольцман ГН. Cверхпроводящий однофотонный детектор для дальнего ИК диапазона длин волн. In: Науч. сессия НИЯУ МИФИ.; 2010. p. 46–7.
Abstract: Мы представляем быстродействующий сверхпроводниковый однофотонный детектор (SSPD) для дальнего инфракрасного диапазона на основе ультратонкой монокристаллической пленки NbN толщиной 3 нм, состоящий из параллельных полосок. QE на длине волны 1,5.μм и 1,3 μм для предложенного SSPD практически одинаковы. SSPD показывает отклик длительностью 200 пс, что открывает путь к детекторам, обладающим скоростью счета свыше 1 ГГц.
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Palma F, Teppe F, Fatimy AE, Green R, Xu J, Vachontin Y, et al. THz communication system based on a THz quantum cascade laser and a hot electron bolometer. In: 35th Int. Conf. Infrared, Millimeter, and Terahertz Waves.; 2010. 11623798 (1 to 2).
Abstract: We present the experimental study of the direct emission – detection system based on the THz Quantum Cascade Laser as a source and Hot Electron Bolometer (HEB) detector – in view of its application as an optical communication system. We show that the system can efficiently transmit the QCL Terahertz pulses. We estimate the maximal modulation speed of the system to be about several GHz and show that it is limited only by the QCL pulse power supply, detector amplifier and connection line/wires parameters.
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Манова НН, Корнеева ЮП, Корнеев АА Гольцман Г. Н. Cверхпроводящий однофотонный детектор, интегрированный с оптическим резонатором. In: Науч. сессия НИЯУ МИФИ.; 2010. p. 92–3.
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Smirnov KV, Vakhtomin YB, Divochiy AV, Ozhegov RV, Pentin IV, Gol'tsman GN. Infrared and terahertz detectors on basis of superconducting nanostructures. In: IEEE, editor. Microwave and Telecom. Technol. (CriMiCo), 20th Int. Crimean Conf.; 2010. p. 823–4.
Abstract: Results of development of single-photon receiving systems of visible, infrared and terahertz range based on thin-film superconducting nanostructures are presented. The receiving systems are produced on the basis of superconducting nanostructures, which function by means of hot-electron phenomena.
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Елезов МС, Тархов МА, Дивочий АВ, Вахтомин ЮБ, Гольцман ГН. Система регистрации одиночных фотонов в видимом и ближнем инфракрасном диапазонах. In: Науч. сессия НИЯУ МИФИ.; 2010. p. 94–5.
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Marsili F, Bitauld D, Fiore A, Gaggero A, Mattioli F, Leoni R, et al. Photon-number-resolution at telecom wavelength with superconducting nanowires [Internet].; 2010 [cited 2024 Jul 6].IntechOpen [DOI:10.5772/6920]. Available from: http://dx.doi.org/10.5772/6920
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