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Rasulova GK, Pentin IV, Goltsman GN. Terahertz emission from a weakly-coupled GaAs/AlGaAs superlattice biased into three different modes of current self-oscillations. AIP Advances. 2019;9(10):105220.
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Elezov MS, Ozhegov RV, Goltsman GN, Makarov V. Development of the experimental setup for investigation of latching of superconducting single-photon detector caused by blinding attack on the quantum key distribution system. In: EPJ Web of Conferences. Vol 132.; 2017. 2.
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Elezov MS, Ozhegov RV, Goltsman GN, Makarov V, Vinogradov EA, Naumov AV, et al. Development of the experimental setup for investigation of latching of superconducting single-photon detector caused by blinding attack on the quantum key distribution system. In: EPJ Web Conf. Vol 132.; 2017. 01004 (1 to 2).
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Tiulina V, Iomdina E, Goltsman G, Seliverstov S, Sianosyan A, Teplyakova K, et al. UVB promotes the initiation of uveitic inflammatory and changes in thehydration of the cornea in vivo. Vol 9.; 2019.
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Sergeev AV, Livanov DV. Phonon renormalization of thermoelectric power of high-Tc materials. In: Meissner M, Pohl RO, editors. Phonon Scattering in Condensed Matter VII. Springer Series in Solid-State Sciences. Vol 112.; 1993. p. 204–5.
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Gershenzon EM, Gurvich YA, Orlova SL, Ptitsina NG. Cyclotron resonance of electrons in Ge in a quantizing magnetic field in the case of inelastic scattering by acoustic phonons. Sov Phys JETP. 1975;40(2):311–5.
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Gershenzon EM, Gol'tsman GN, Ptitsina NG. Investigation of free excitons in Ge and their condensation at submillimeter wavelengths. Sov Phys JETP. 1976;43(1):116–22.
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Tretyakov I, Kaurova N, Voronov BM, Goltsman GN. About effect of the temperature operating conditions on the noise temperature and noise bandwidth of the terahertz range NbN hot-electron bolometers [abstract]. In: Proc. 29th Int. Symp. Space Terahertz Technol.; 2018. 113.
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Tret'yakov IV, Kaurova NS, Voronov BM, Anfert'ev VA, Revin LS, Vaks VL, et al. The influence of the diffusion cooling on the noise band of the superconductor NbN hot-electron bolometer operating in the terahertz range. Tech. Phys. Lett.. 2016;42(6):563–6.
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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.
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