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  Author Title Year Publication Volume (up) Pages Links
Tretyakov, Ivan; Ryabchun, Sergey; Finkel, Matvey; Maslennikova, Anna; Kaurova, Natalia; Lobastova, Anastasia; Voronov, Boris; Gol'tsman, Gregory Low noise and wide bandwidth of NbN hot-electron bolometer mixers 2011 Appl. Phys. Lett. 98 033507 (1 to 3) details   doi
Sidorova, M.; Semenov, A.; Hübers, H.-W.; Kuzmin, A.; Doerner, S.; Ilin, K.; Siegel, M.; Charaev, I.; Vodolazov, D. Timing jitter in photon detection by straight superconducting nanowires: Effect of magnetic field and photon flux 2018 Phys. Rev. B 98 134504 (1 to 14) details   doi
Rasulova, G. K.; Brunkov, P. N.; Pentin, I. V.; Egorov, A. Y.; Knyazev, D. A.; Andrianov, A. V.; Zakhar’in, A. O.; Konnikov, S. G.; Gol’tsman, G. N. A weakly coupled semiconductor superlattice as a potential for a radio frequency modulated terahertz light emitter 2012 Appl. Phys. Lett. 100 131104 (1 to 4) details   doi
Baselmans, J. J. A.; Baryshev, A.; Reker, S. F.; Hajenius, M.; Gao, J. R.; Klapwijk, T. M.; Voronov, B.; Gol’tsman, G. Influence of the direct response on the heterodyne sensitivity of hot electron bolometer mixers 2006 J. Appl. Phys. 100 084510 (1 to 7) details   doi
Kooi, J. W.; Baselmans, J. J. A.; Baryshev, A.; Schieder, R.; Hajenius, M.; Gao, J.R.; Klapwijk, T. M.; Voronov, B.; Gol’tsman, G. Stability of heterodyne terahertz receivers 2006 J. Appl. Phys. 100 064904 (1 to 9) details   doi
Cherednichenko, S.; Drakinskiy, V.; Baubert, J.; Krieg, J.-M.; Voronov, B.; Gol'tsman, G.; Desmaris, V. Gain bandwidth of NbN hot-electron bolometer terahertz mixers on 1.5 μm Si3N4 / SiO2 membranes 2007 J. Appl. Phys. 101 124508 (1 to 6) details   doi
Shcherbatenko, M. L.; Elezov, M. S.; Goltsman, G. N.; Sych, D. V. Sub-shot-noise-limited fiber-optic quantum receiver 2020 Phys. Rev. A 101 032306 (1 to 5) details   doi
Zhang, X.; Lita, A. E.; Smirnov, K.; Liu, H. L.; Zhu, D.; Verma, V. B.; Nam, S. W.; Schilling, A. Strong suppression of the resistivity near the superconducting transition in narrow microbridges in external magnetic fields 2020 Phys. Rev. B 101 060508 (1 to 6) details   doi
Sidorova, M.; Semenov, Alexej D.; Hübers, H.-W.; Ilin, K.; Siegel, M.; Charaev, I.; Moshkova, M.; Kaurova, N.; Goltsman, G. N.; Zhang, X.; Schilling, A. Electron energy relaxation in disordered superconducting NbN films 2020 Phys. Rev. B 102 054501 (1 to 15) details   doi
Kardakova, A.; Finkel, M.; Morozov, D.; Kovalyuk, V.; An, P.; Dunscombe, C.; Tarkhov, M.; Mauskopf, P.; Klapwijk, T.M.; Goltsman, G. The electron-phonon relaxation time in thin superconducting titanium nitride films 2013 Appl. Phys. Lett. 103 252602 (1 to 4) details   doi
Fedorov, G.; Kardakova, A.; Gayduchenko, I.; Charayev, I.; Voronov, B.M.; Finkel, M.; Klapwijk, T.M.; Morozov, S.; Presniakov, M.; Bobrinetskiy, I.; Ibragimov, R.; Goltsman, G. Photothermoelectric response in asymmetric carbon nanotube devices exposed to sub-terahertz radiation 2013 Appl. Phys. Lett. 103 181121 (1 to 5) details   doi
Ferrari, S.; Kahl, O.; Kovalyuk, V.; Goltsman, G. N.; Korneev, A.; Pernice, W. H. P. Waveguide-integrated single- and multi-photon detection at telecom wavelengths using superconducting nanowires 2015 Appl. Phys. Lett. 106 151101 (1 to 5) details   doi
Beck, M.; Klammer, M.; Lang, S.; Leiderer, P.; Kabanov, V. V.; Gol'tsman, G. N.; Demsar, J. Energy-gap dynamics of superconducting NbN thin films studied by time-resolved terahertz spectroscopy 2011 Phys. Rev. Lett. 107 4 details   doi
Maingault, L.; Tarkhov, M.; Florya, I.; Semenov, A.; Espiau de Lamaëstre, R.; Cavalier, P.; Gol’tsman, G.; Poizat, J.-P.; Villégier, J.-C. Spectral dependency of superconducting single photon detectors 2010 J. Appl. Phys. 107 116103 (1 to 3) details   doi
Shcherbatenko, M.; Tretyakov, I.; Lobanov, Yu.; Maslennikov, S. N.; Kaurova, N.; Finkel, M.; Voronov, B.; Goltsman, G.; Klapwijk, T. M. Nonequilibrium interpretation of DC properties of NbN superconducting hot electron bolometers 2016 Appl. Phys. Lett. 109 132602 details   doi
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