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Verevkin, A.; Zhang, J.; Pearlman, A.; Slysz, W.; Sobolewski, Roman; Korneev, A.; Kouminov, P.; Okunev, O.; Chulkova, G.; Gol'tsman, G. Ultimate sensitivity of superconducting single-photon detectors in the visible to infrared range 2004 ResearchGate details   url
Korneev, A. A. Superconducting NbN microstrip single-photon detectors 2021 Proc. Quantum Optics and Photon Counting 11771 details   doi
Il’in, K. S.; Milostnaya, I. I.; Verevkin, A. A.; Gol’tsman, G. N.; Gershenzon, E. M.; Sobolewski, R. Ultimate quantum efficiency of a superconducting hot-electron photodetector 1998 Appl. Phys. Lett. 73 3938-3940 details   doi
Kerman, A. J.; Dauler, E. A.; Keicher, W. E.; Yang, J. K. W.; Berggren, K. K.; Gol’tsman, G.; Voronov, B. Kinetic-inductance-limited reset time of superconducting nanowire photon counters 2006 Appl. Phys. Lett. 88 111116 (1 to 3) details   doi
Gol’tsman, G. N.; Okunev, O.; Chulkova, G.; Lipatov, A.; Semenov, A.; Smirnov, K.; Voronov, B.; Dzardanov, A.; Williams, C.; Sobolewski, R. Picosecond superconducting single-photon optical detector 2001 Appl. Phys. Lett. 79 705-707 details   doi
Shcherbatenko, M.; Elezov, M.; Manova, N.; Sedykh, K.; Korneev, A.; Korneeva, Y.; Dryazgov, M.; Simonov, N.; Feimov, A.; Goltsman, G.; Sych, D. Single-pixel camera with a large-area microstrip superconducting single photon detector on a multimode fiber 2021 Appl. Phys. Lett. 118 181103 details   doi
Zhang, J.; Boiadjieva, N.; Chulkova, G.; Deslandes, H.; Gol'tsman, G. N.; Korneev, A.; Kouminov, P.; Leibowitz, M.; Lo, W.; Malinsky, R.; Okunev, O.; Pearlman, A.; Slysz, W.; Smirnov, K.; Tsao, C.; Verevkin, A.; Voronov, B.; Wilsher, K.; Sobolewski, R. Noninvasive CMOS circuit testing with NbN superconducting single-photon detectors 2003 Electron. Lett. 39 1086-1088 details   doi
Lusche, R.; Semenov, A.; Ilin, K.; Siegel, M.; Korneeva, Y.; Trifonov, A.; Korneev, A.; Goltsman, G.; Vodolazov, D.; Hübers, H.-W. Effect of the wire width on the intrinsic detection efficiency of superconducting-nanowire single-photon detectors 2014 J. Appl. Phys. 116 043906 (1 to 9) 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
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
Zhang, J.; Słysz, W.; Pearlman, A.; Verevkin, A.; Sobolewski, R.; Okunev, O.; Chulkova, G.; Gol’tsman, G. N. Time delay of resistive-state formation in superconducting stripes excited by single optical photons 2003 Phys. Rev. B 67 132508 (1 to 4) details   doi
Korneev, A.; Lipatov, A.; Okunev, O.; Chulkova, G.; Smirnov, K.; Gol’tsman, G.; Zhang, J.; Slysz, W.; Verevkin, A.; Sobolewski, R. GHz counting rate NbN single-photon detector for IR diagnostics of VLSI CMOS circuits 2003 Microelectronic Engineering 69 274-278 details   doi
Goltsman, G.; Korneev, A.; Izbenko, V.; Smirnov, K.; Kouminov, P.; Voronov, B.; Kaurova, N.; Verevkin, A.; Zhang, J.; Pearlman, A.; Slysz, W.; Sobolewski, R. Nano-structured superconducting single-photon detectors 2004 Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 520 527-529 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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