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Smirnov, K.; Vachtomin, Y.; Divochiy, A.; Antipov, A.; Goltsman, G. The limitation of noise equivalent power by background radiation for infrared superconducting single photon detectors coupled to standard single mode optical fibers 2015 Rus. J. Radio Electron. details   url
Pentin, Ivan; Finkel, Matvey; Maslennikov, Sergey; Vakhtomin, Yuri; Smirnov, Konstantin; Kaurova, Nataliya; Goltsman, Gregory Superconducting hot-electron-bolometer mixers for the mid-IR 2017 Rus. J. Radio Electron. details   url
Gousev, Y. P.; Gol'tsman, G. N.; Karasik, B. S.; Gershenzon, E. M.; Semenov, A. D.; Barowski, H. S.; Nebosis, R. S.; Renk, K. F. Quasioptical superconducting hot electron bolometer for submillmeter waves 1996 Int. J. of Infrared and Millimeter Waves 17 317-331 details   doi
Milostnaya, I.; Korneev, A.; Tarkhov, M.; Divochiy, A.; Minaeva, O.; Seleznev, V.; Kaurova, N.; Voronov, B.; Okunev, O.; Chulkova, G.; Smirnov, K.; Gol’tsman, G. Superconducting single photon nanowire detectors development for IR and THz applications 2008 J. Low Temp. Phys. 151 591-596 details   doi
de Lara, D. Perez; Ejrnaes, M.; Casaburi, A.; Lisitskiy, M.; Cristiano, R.; Pagano, S.; Gaggero, A.; Leoni, R.; Golt’sman, G.; Voronov, B. Feasibility investigation of NbN nanowires as detector in time-of-flight mass spectrometers for macromolecules of interest in biology (proteins) 2008 J. Low Temp. Phys. 151 771-776 details   doi
Seliverstov, S. V.; Anfertyev, V. A.; Tretyakov, I. V.; Ozheredov, I. A.; Solyankin, P. M.; Revin, L. S.; Vaks, V. L.; Rusova, A. A.; Goltsman, G. N.; Shkurinov, A. P. Terahertz heterodyne receiver with an electron-heating mixer and a heterodyne based on the quantum-cascade laser 2017 Radiophys. Quant. Electron. 60 518-524 details   doi
Tretyakov, I. V.; Anfertyev, V. A.; Revin, L. S.; Kaurova, N. S.; Voronov, B. M.; Vaks, V. L.; Goltsman, G. N. Sensitivity and resolution of a heterodyne receiver based on the NbN HEB mixer with a quantum-cascade laser as a local oscillator 2018 Radiophys. Quant. Electron. 60 988-992 details   doi
Men’shchikov, E. M.; Gogidze, I. G.; Sergeev, A. V.; Elant’ev, A. I.; Kuminov, P. B.; Gol’tsman, G. N.; Gershenzon, E. M. Superconducting fast detector based on the nonequilibrium inductance response of a film of niobium nitride 1997 Tech. Phys. Lett. 23 486-488 details   doi
Pentin, I. V.; Smirnov, A. V.; Ryabchun, S. A.; Ozhegov, R. V.; Gol’tsman, G. N.; Vaks, V. L.; Pripolzin, S. I.; Pavel’ev, D. G.; Koshurinov, Y. I.; Ivanov, A. S. Semiconducting superlattice as a solid-state terahertz local oscillator for NbN hot-electron bolometer mixers 2012 Tech. Phys. 57 971-974 details   doi
Tret’yakov, I. V.; Ryabchun, S. A.; Kaurova, N. S.; Larionov, P. A.; Lobastova, A. A.; Voronov, B. M.; Finkel, M. I.; Gol’tsman, G. N. Optimum absorbed heterodyne power for superconducting NbN hot-electron bolometer mixer 2010 Tech. Phys. Lett. 36 1103-1105 details   doi
Gol'tsman, G.; Maslennikov, S.; Finkel, M.; Antipov, S.; Kaurova, N.; Grishina, E.; Polyakov, S.; Vachtomin, Y.; Svechnikov, S.; Smirnov, K.; Voronov, B. Nanostructured ultrathin NbN film as a terahertz hot-electron bolometer mixer 2006 Proc. MRS 935 210 (1 to 6) details   doi
Bell, Matthew; Sergeev, Andrei; Goltsman, Gregory; Bird, Jonathan; Verevkin, Aleksandr Transition-edge sensors based on superconducting nanowires 2006 Proc. APS March Meeting B38.00001 details   url
Kitaygorsky, Jennifer; Komissarov, I.; Jukna, A.; Sobolewski, Roman; Minaeva, O.; Kaurova, N.; Korneev, A.; Voronov, B.; Milostnaya, I.; Gol'Tsman, Gregory Nanosecond, transient resistive state in two-dimensional superconducting stripes 2006 Proc. APS March Meeting H38.13 details   url
Jiang, L.; Zhang, W.; Yao, Q. J.; Lin, Z. H.; Li, J.; Shi, S. C.; Svechnikov, S. I.; Vachtomin, Y. B.; Antipov, S. V.; Voronov, B. M.; Kaurova, N. S.; Gol'tsman, G. N. Characterization of a quasi-optical NbN superconducting hot-electron bolometer mixer 2005 Proc. PIERS 1 587-590 details   doi
Somani, S.; Kasapi, S.; Wilsher, K.; Lo, W.; Sobolewski, R.; Gol’tsman, G. New photon detector for device analysis: Superconducting single-photon detector based on a hot electron effect 2001 J. Vac. Sci. Technol. B 19 2766-2769 details   doi
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