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Author Title Year Publication Volume Pages (up)
Korneev, A. A.; Divochiy, A. V.; Vakhtomin, Yu. B.; Korneeva, Yu. P.; Larionov, P. A.; Manova, N. N.; Florya, I. N.; Trifonov, A. V.; Voronov, B. M.; Smirnov, K. V.; Semenov, A. V.; Chulkova, G. M.; Goltsman, G. N. IR single-photon receiver based on ultrathin NbN superconducting film 2013 Rus. J. Radio Electron.
Semenov, A. V.; Devyatov, I. A.; Korneev, A. A.; Smirnov, K. V.; Goltsman, G. N.; Melnikov, A. P. Derivation of expression for thermodynamic potential of “dirty” superconductor 2012 Rus. J. Radio Electron.
Korneeva, Yu. P.; Trifonov, A. V.; Vakhtomin, Yu. B.; Smirnov, K. V. Design of resonator for superconducting single-photon detector 2011 Rus. J. Radio Electron.
Lobanov, Y. V.; Vakhtomin, Y. B.; Pentin, I. V.; Rosental, V. A.; Smirnov, K. V.; Goltsman, G. N.; Volkov, O. Y.; Dyuzhikov, I. N.; Galiev, R. R.; Ponomarev, D. S.; Khabibullin, R. A. Time-resolved measurements of light–current characteristic and mode competition in pulsed THz quantum cascade laser 2021 Optical Engineering 60 1-8
Moshkova, M. A.; Morozov, P. V.; Antipov, A. V.; Vakhtomin, Y. B.; Smirnov, K. V. High-efficiency multi-element superconducting single-photon detector 2021 Proc. SPIE 11771 2-8
Zinoni, C.; Alloing, B.; Li, L. H.; Marsili, F.; Fiore, A.; Lunghi, L.; Gerardino, A.; Vakhtomin, Y. B.; Smirnov, K. V.; Gol’tsman, G. N. Single-photonics at telecom wavelengths using nanowire superconducting single photon detectors 2007 CLEO/QELS QTuF6 (1 to 2)
Ozhegov, R. V.; Gorshkov, K. N.; Smirnov, K. V.; Gol’tsman, G. N.; Filippenko, L. V.; Koshelets, V. P. Terahertz imaging system based on superconducting integrated receiver 2010 Proc. 2-nd Int. Conf. Terahertz and Microwave radiation: Generation, Detection and Applications 20-22
Smirnov, K. V.; Ptitsina, N. G.; Vakhtomin, Y. B.; Verevkin, A. A.; Gol’tsman, G. N.; Gershenzon, E. M. Energy relaxation of two-dimensional electrons in the quantum Hall effect regime 2000 JETP Lett. 71 31-34
Verevkin, A. A.; Ptitsina, N. G.; Smirnov, K. V.; Goltsman, G. N.; Gershenson, E. M.; Yngvesson, K. S. Direct measurements of electron energy relaxation times at an AlGaAs/GaAs heterointerface in the optical phonon scattering range 1997 Proc. 4-th Int. Semicond. Device Research Symp. 55-58
Shangina, E. L.; Smirnov, K. V.; Morozov, D. V.; Kovalyuk, V. V.; Gol’tsman, G. N.; Verevkin, A. A.; Toropov, A. I. Concentration dependence of the intermediate frequency bandwidth of submillimeter heterodyne AlGaAs/GaAs nanostructures 2010 Bull. Russ. Acad. Sci. Phys. 74 100-102
Ozhegov, R. V.; Gorshkov, K. N.; Vachtomin, Y. B.; Smirnov, K. V.; Finkel, M. I.; Goltsman, G. N.; Kiselev, O. S.; Kinev, N. V.; Filippenko, L. V.; Koshelets, V. P. Terahertz imaging system based on superconducting heterodyne integrated receiver 2014 Proc. THz and Security Applications 113-125
Zolotov, P. I.; Vakhtomin, Yu. B.; Divochiy, A. V.; Seleznev, V. A.; Smirnov, K. V. Technology development of resonator-based structures for efficiency increasing of NBN detectors of IR single photons 2016 Proc. 5th Int. Conf. Photonics and Information Optics 115-116
Verevkin, A. A.; Ptitsina, N. G.; Smirnov, K. V.; Gol'tsman, G. N.; Voronov, B. M.; Gershenzon, E. M.; Yngvesson, K. S. Hot electron bolometer detectors and mixers based on a superconducting-two-dimensional electron gas-superconductor structure 1997 Proc. 4-th Int. Semicond. Device Research Symp. 163-166
Semenov, A. D.; Hübers, Heinz-Wilhelm; Richter, H.; Birk, M.; Krocka, M.; Mair, U.; Vachtomin, Yu. B.; Finkel, M. I.; Antipov, S. V.; Voronov, B. M.; Smirnov, K. V.; Kaurova, N. S.; Drakinski, V. N.; Gol'tsman, G. N. Superconducting hot-electron bolometer mixer for terahertz heterodyne receivers 2003 IEEE Trans. Appl. Supercond. 13 168-171
Glejm, A. V.; Anisimov, A. A.; Asnis, L. N.; Vakhtomin, Yu. B.; Divochiy, A. V.; Egorov, V. I.; Kovalyuk, V. V.; Korneev, A. A.; Kynev, S. M.; Nazarov, Yu. V.; Ozhegov, R. V.; Rupasov, A. V.; Smirnov, K. V.; Smirnov, M. A.; Goltsman, G. N.; Kozlov, S. A. Quantum key distribution in an optical fiber at distances of up to 200 km and a bit rate of 180 bit/s 2014 Bulletin of the Russian Academy of Sciences. Physics 78 171-175