toggle visibility Search & Display Options

Select All    Deselect All
List View
 |   | 
   print
  Author Title (up) Year Publication Volume Pages Links
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. Erratum: “Single photon experiments at telecom wavelengths using nanowire superconducting detectors” [Appl. Phys. Lett. 91, 031106 (2007)] 2010 Appl. Phys. Lett. 96 089901 details   doi
Semenov, A. D.; Goghidze, I. G.; Gol’tsman, G. N.; Sergeev, A. V.; Gershenzon, E. M. Evidence for the spectral dependence of nonequilibrium picosecond photoresponse of YBaCuO thin films 1993 Appl. Phys. Lett. 63 681-683 details   doi
Karasik, B. S.; Zorin, M. A.; Milostnaya, I. I.; Elantev, A. I.; Gol’tsman, G. N.; Gershenzon, E. M. Evidence of subnanosecond transition stage in S-N current switching of YBaCuO films 1994 Proc. SPIE 2160 74-82 details   doi
Casaburi, A.; Ejrnaes, M.; Quaranta, O.; Gaggero, A.; Mattioli, F.; Leoni, R.; Voronov, B.; Gol'tsman, G.; Lisitskiy, M.; Esposito, E.; Nappi, C.; Cristiano, R.; Pagano, S. Experimental characterization of NbN nanowire optical detectors with parallel stripline configuration 2008 J. Phys.: Conf. Ser. 97 012265 (1 to 6) details   doi
An, P.; Kovalyuk, V.; Golikov, A.; Zubkova, E.; Ferrari, S.; Korneev, A.; Pernice, W.; Goltsman, G. Experimental optimisation of O-ring resonator Q-factor for on-chip spontaneous four wave mixing 2018 J. Phys.: Conf. Ser. 1124 051047 details   doi
Neroev, V. V.; Iomdina, E. N.; Khandzhyan, A. T.; Khodzhabekyan, N. V.; Sengaeva, M. D.; Ivanova, A. V.; Seliverstov, S. V.; Teplyakova, K. O.; Goltsman, G. N. Experimental study of the effect of corneal hydration and its biomechanical properties on the results of photorefractive keratectomy 2021 Vestn. Oftalmol. 137 68-75 details   doi
Polyakova, M. I.; Florya, I. N.; Semenov, A. V.; Korneev, A. A.; Goltsman, G. N. Extracting hot-spot correlation length from SNSPD tomography data 2019 J. Phys.: Conf. Ser. 1410 012166 (1 to 4) details   doi
Ryabchun, S. A.; Tretyakov, I. V.; Finkel, M. I.; Maslennikov, S. N.; Kaurova, N. S.; Seleznev, V. A.; Voronov, B. M.; Goltsman, G. N. Fabrication and characterisation of NbN HEB mixers with in situ gold contacts 2008 Proc. 19th Int. Symp. Space Terahertz Technol. 62-67 details   url
Gol’tsman, G.; Okunev, O.; Chulkova, G.; Lipatov, A.; Dzardanov, A.; Smirnov, K.; Semenov, A.; Voronov, B.; Williams, C.; Sobolewski, R. Fabrication and properties of an ultrafast NbN hot-electron single-photon detector 2001 IEEE Trans. Appl. Supercond. 11 574-577 details   doi
Yang, J. K. W.; Dauler, E.; Ferri, A.; Pearlman, A.; Verevkin, A.; Gol’tsman, G.; Voronov, B.; Sobolewski, R.; Keicher, W. E.; Berggren, K. K. Fabrication development for nanowire GHz-counting-rate single-photon detectors 2005 IEEE Trans. Appl. Supercond. 15 626-630 details   doi
Gol’tsman, G. N.; Smirnov, K.; Kouminov, P.; Voronov, B.; Kaurova, N.; Drakinsky, V.; Zhang, J.; Verevkin, A.; Sobolewski, R. Fabrication of nanostructured superconducting single-photon detectors 2003 IEEE Trans. Appl. Supercond. 13 192-195 details   doi
Titova, N. A.; Baeva, E. M.; Kardakova, A. I.; Goltsman, G. N. Fabrication of NbN/SiNx:H/SiO2 membrane structures for study of heat conduction at low temperatures 2020 J. Phys.: Conf. Ser. 1695 012190 details   doi
Seliverstov, S.; Maslennikov, S.; Ryabchun, S.; Finkel, M.; Klapwijk, T. M.; Kaurova, N.; Vachtomin, Yu.; Smirnov, K.; Voronov, B.; Goltsman, G. Fast and sensitive terahertz direct detector based on superconducting antenna-coupled hot electron bolometer 2015 IEEE Trans. Appl. Supercond. 25 2300304 details   doi
Zorin, M.; Milostnaya, I.; Gol'tsman, G. N.; Gershenzon, E. M. Fast NbN superconducting switch controlled by optical radiation 1997 IEEE Trans. Appl. Supercond. 7 3734-3737 details   doi
Akhmadishina, K. F.; Bobrinetskiy, I. I.; Komarov, I. A.; Malovichko, A. M.; Nevolin, V. K.; Fedorov, G. E.; Golovin, A. V.; Zalevskiy, A. O.; Aidarkhanov, R. D. Fast-response biological sensors based on single-layer carbon nanotubes modified with specific aptamers 2015 Semicond. 49 1749-1753 details   doi
Gershenzon, E. M.; Gershenson, M. E.; Goltsman, G. N.; Karasik, B. S.; Lyulkin, A. M.; Semenov, A. D. Fast-response superconducting electron bolometer 1989 Pisma v Zhurnal Tekhnicheskoi Fiziki 15 88-92 details   url
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
Smirnov, K. V.; Vachtomin, Y. B.; Ozhegov, R. V.; Pentin, I. V.; Slivinskaya, E. V.; Korneev, A. A.; Goltsman, G. N. Fiber coupled single photon receivers based on superconducting detectors for quantum communications and quantum cryptography 2008 Proc. SPIE 7138 713827 (1 to 6) details   doi
Slysz, W.; Wegrzecki, M.; Bar, J.; Grabiec, P.; Gorska, M.; Rieger, E.; Dorenbos, P.; Zwiller, V.; Milostnaya, I.; Minaeva, O.; Antipov, A.; Okunev, O.; Korneev, A.; Smirnov, K.; Voronov, B.; Kaurova, N.; Gol’tsman, G.N.; Kitaygorsky, J.; Pan, D.; Pearlman, A.; Cross, A.; Komissarov, I.; Sobolewski, R. Fiber-coupled NbN superconducting single-photon detectors for quantum correlation measurements 2007 Proc. SPIE 6583 65830J (1 to 11) details   doi
Slysz, W.; Wegrzecki, M.; Bar, J.; Grabiec, P.; Górska, M.; Latta, C.; Zwiller, V.; Pearlman, A.; Cross, A.; Korneev, A.; Kouminov, P.; Smirnov, K.; Voronov, B.; Gol’tsman, G.; Verevkin, A.; Currie, M.; Sobolewski, R. Fiber-coupled quantum-communications receiver based on two NbN superconducting single-photon detectors 2005 Proc. SPIE 5957 59571K (1 to 10) details   doi
Słysz, W.; Węgrzecki, M.; Bar, J.; Grabiec, P.; Górska, M.; Zwiller, V.; Latta, C.; Bohi, P.; Milostnaya, I.; Minaeva, O.; Antipov, A.; Okunev, O.; Korneev, A.; Smirnov, K.; Voronov, B.; Kaurova, N.; Gol’tsman, G.; Pearlman, A.; Cross, A.; Komissarov, I.; Verevkin, A.; Sobolewski, R. Fiber-coupled single-photon detectors based on NbN superconducting nanostructures for practical quantum cryptography and photon-correlation studies 2006 Appl. Phys. Lett. 88 261113 (1 to 3) details   doi
Słysz, W.; Wegrzecki, M.; Bar, J.; Grabiec, P.; Górska, M.; Zwiller, V.; Latta, C.; Böhi, P.; Pearlman, A.J.; Cross, A.S.; Pan, D.; Kitaygorsky, J.; Komissarov, I.; Verevkin, A.; Milostnaya, I.; Korneev, A.; Minayeva, O.; Chulkova, G.; Smirnov, K.; Voronov, B.; Gol’tsman, G.N.; Sobolewski, R. Fibre-coupled, single photon detector based on NbN superconducting nanostructures for quantum communications 2007 J. Modern Opt. 54 315-326 details   doi
Kawamura, Jonathan; Blundell, Raymond; Tong, C.-Y. Edward; Papa, D. Cosmo; Hunter, Todd R.; Gol'tsman, Gregory; Cherednichenko, Sergei; Voronov, Boris; Gershenzon, Eugene First light with an 800 GHz phonon-cooled HEB mixer receiver 1998 Proc. 9th Int. Symp. Space Terahertz Technol. 35-43 details   url
Kitaygorsky, Jennifer; Komissarov, I.; Jukna, A.; Minaeva, O.; Kaurova, N.; Divochiy, A.; Korneev, A.; Tarkhov, M.; Voronov, B.; Milostnaya, I.; Gol'tsman, G.; Sobolewski, R. Fluctuations in two-dimensional superconducting NbN nanobridges and nanostructures meanders 2007 Proc. APS March Meeting 52 L9.00013 details   url
Shangina, E. L.; Smirnov, K. V.; Morozov, D. V.; Kovalyuk, V. V.; Gol’tsman, G. N.; Verevkin, A. A.; Toropov, A. I. Frequency bandwidth and conversion loss of a semiconductor heterodyne receiver with phonon cooling of two-dimensional electrons 2010 Semicond. 44 1427-1429 details   doi
Semenov, A. D.; Hübers, H.–W.; Schubert, J.; Gol'tsman, G. N.; Elantiev, A. I.; Voronov, B. M.; Gershenzon, E. M. Frequency dependent noise temperature of the lattice cooled hot-electron terahertz mixer 2000 Proc. 11th Int. Symp. Space Terahertz Technol. 39-48 details   url
Baselmans, J.; Kooi, J.; Baryshev, A.; Yang, Z. Q.; Hajenius, M.; Gao, J. R.; Klapwijk, T. M.; Voronov, B.; Gol’tsman, G. Full characterization of small volume NbN HEB mixers for space applications 2005 Proc. 16th Int. Symp. Space Terahertz Technol. 457-462 details   url
Khasminskaya, S.; Pyatkov, F.; Słowik, K.; Ferrari, S.; Kahl, O.; Kovalyuk, V.; Rath, P.; Vetter, A.; Hennrich, F.; Kappes, M. M.; Gol'tsman, G.; Korneev, A.; Rockstuhl, C.; Krupke, R.; Pernice, W. H. P. Fully integrated quantum photonic circuit with an electrically driven light source 2016 Nat. Photon. 10 727-732 details   doi
Ekstörm, H.; Kollberg, E.; Yagoubov, P.; Gol'tsman, G.; Gershenzon, E.; Yngvesson, S. Gain and noise bandwidth of NbN hot-electron bolometric mixers 1997 Appl. Phys. Lett. 70 3296-3298 details   doi
Maslennikova, Anna; Tretyakov, Ivan; Ryabchun, Sergey; Finkel, Matvey; Kaurova, Natalia; Voronov, Boris; Gol’tsman, Gregory Gain bandwidth and noise temperature of NbN HEB mixers with simultaneous phonon and diffusion cooling 2010 Proc. 21th Int. Symp. Space Terahertz Technol. 218-219 details   url
Finkel, Matvey; Vachtomin, Yuriy; Antipov, Sereey; Drakinski, Vladimir; Kaurova, Natalia; Voronov, Boris; Goltsman, Greeory Gain bandwidth and noise temperature of NbTiN HEB mixer 2003 Proc. 14th Int. Symp. Space Terahertz Technol. 276-285 details   url
Antipov, S.; Trifonov, A.; Krause, S.; Meledin, D.; Desmaris, V.; Belitsky, V.; Gol’tsman, G. Gain bandwidth of NbN HEB mixers on GaN buffer layer operating at 2 THz local oscillator frequency 2017 Proc. 28th Int. Symp. Space Terahertz Technol. 147-148 details   openurl
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
Vahtomin, Yuriy B.; Finkel, Matvey I.; Antipov, Sergey V.; Voronov, Boris M.; Smirnov, Konstantin V.; Kaurova, Natalia S.; Drakinski, Vladimir N.; Gol'tsman, Gregogy N. Gain bandwidth of phonon-cooled HEB mixer made of NbN thin film with MgO buffer layer on Si 2002 Proc. 13th Int. Symp. Space Terahertz Technol. 259-270 details   url
Trifonov, A.; Tong, C.-Y. E.; Lobanov, Y.; Kaurova, N.; Blundell, R.; Goltsman, G. Gap frequency and photon absorption in a hot electron bolometer 2016 Proc. 27th Int. Symp. Space Terahertz Technol. 121 details   url
Matyushkin, Yakov; Fedorov, Georgy; Moskotin, Maksim; Danilov, Sergey; Ganichev, Sergey; Goltsman, Gregory Gate-mediated helicity sensitive detectors of terahertz radiation with graphene-based field effect transistors 2020 Graphene and 2dm Virt. Conf. details   url
Kuznetsov, K. A.; Kornienko, V. V.; Vakhtomin, Y. B.; Pentin, I. V.; Smirnov, K. V.; Kitaeva, G. K. Generation and detection of optical-terahertz biphotons via spontaneous parametric downconversion 2018 Proc. ICLO 303 details   doi
Lang, P. T.; Knott, W. J.; Leipold, I.; Renk, K. F.; Semenov, A. D.; Gol'tsman, G. N. Generation and detection of tunable ultrashort infrared and far-infrared radiation pulses of high intensity 1992 Int. J. of Infrared and Millimeter Waves 13 373-380 details   doi
Tuchak, A. N.; Gol’tsman, G. N.; Kitaeva, G. K.; Penin, A. N.; Seliverstov, S. V.; Finkel, M. I.; Shepelev, A. V.; Yakunin, P. V. Generation of nanosecond terahertz pulses by the optical rectification method 2012 JETP Lett. 96 94-97 details   doi
Gershenzon, E. M.; Goltsman, G.; Orlova, S.; Ptitsina, N.; Gurvich, Y. Germanium hot-electron narrow-band detector 1971 Sov. Radio Engineering And Electronic Physics 16 1346 details   url
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
Pearlman, A.; Cross, A.; Slysz, W.; Zhang, J.; Verevkin, A.; Currie, M.; Korneev, A.; Kouminov, P.; Smirnov, K.; Voronov, B.; Gol’tsman, G.; Sobolewski, R. Gigahertz counting rates of NbN single-photon detectors for quantum communications 2005 IEEE Trans. Appl. Supercond. 15 579-582 details   doi
Fedorov, G.; Gayduchenko, I.; Titova, N.; Moskotin, M.; Obraztsova, E.; Rybin, M.; Goltsman, G. Graphene-based lateral Schottky diodes for detecting terahertz radiation 2018 Proc. Optical Sensing and Detection V 10680 30-39 details   doi
Matyushkin, Y. E.; Gayduchenko, I. A.; Moskotin, M. V.; Goltsman, G. N.; Fedorov, G. E.; Rybin, M. G.; Obraztsova, E. D. Graphene-layer and graphene-nanoribbon FETs as THz detectors 2018 J. Phys.: Conf. Ser. 1124 051054 details   doi
Kawamura, J.; Hunter, T. R.; Tong, C. Y. E.; Blundell, R.; Papa, D. C.; Patt, F.; Peters, W.; Wilson, T.; Henkel, C.; Goltsman, G.; Gershenzon, E. Ground-based terahertz CO spectroscopy towards Orion 2002 A&A 394 271-274 details   doi
Sergeev, A.; Semenov, A.; Trifonov, V.; Karasik, B.; Gol'tsman, G.; Gershenzon, E. Heat transfer in YBaCuO thin film/sapphire substrate system 1994 J. Supercond. 7 341-344 details   doi
Gershenzon, E. M.; Gershenzon, M. E.; Gol'tsman, G. N.; Semenov, A. D.; Sergeev, A. V. Heating of electrons in a superconductor in the resistive state by electromagnetic radiation 1984 Sov. Phys. JETP 59 442-450 details   url
Gershenzon, E. M.; Gol'tsman, G. N.; Semenov, A. D.; Sergeev, A. V. Heating of electrons in resistive state of superconducting films. Detectors, mixers and switches 1992 Progress in High Temperature Superconductivity 32 190-195 details   doi
Gershenzon, E. M.; Gershenzon, M. E.; Gol'tsman, G. N.; Semyonov, A. D.; Sergeev, A. V. Heating of electrons in superconductor in the resistive state due to electromagnetic radiation 1984 Solid State Communications 50 207-212 details   doi
Gershenzon, E.; Gershenzon, M. E.; Gol'tsman, G. N.; Semenov, A. D.; Sergeev, A. V. Heating of quasiparticles in a superconducting film in the resistive state 1981 JETP Lett. 34 268-271 details   url
Kroug, M.; Cherednichenko, S.; Choumas, M.; Merkel, H.; Kollberg, E.; Hübers, H.-W.; Richter, H.; Loudkov, D.; Voronov, B.; Gol'Tsman, G. HEB quasi-optical heterodyne receiver for THz frequencies 2001 Proc. 12th Int. Symp. Space Terahertz Technol. 244-252 details   url
Matyushkin, Y.; Danilov, S.; Moskotin, M.; Belosevich, V.; Kaurova, N.; Rybin, M.; Obraztsova, E. D.; Fedorov, G.; Gorbenko, I.; Kachorovskii, V.; Ganichev, S. Helicity-sensitive plasmonic terahertz interferometer 2020 Nano Lett. 20 7296-7303 details   doi
Lobanov, Yury; Shcherbatenko, Michael; Shurakov, Alexander; Rodin, Alexander V.; Klimchuk, Artem; Nadezhdinsky, Alexander I.; Maslennikov, Sergey; Larionov, Pavel; Finkel, Matvey; Semenov, Alexander; Verevkin, Aleksandr A.; Voronov, Boris M.; Ponurovsky, Yakov; Klapwijk, Teunis M.; Gol'tsman, Gregory N. Heterodyne detection at near-infrared wavelengths with a superconducting NbN hot-electron bolometer mixer 2014 Opt. Lett. 39 1429-1432 details   doi
Semenov, A. D.; Gousev, Y. P.; Nebosis, R. S.; Renk, K. F.; Yagoubov, P.; Voronov, B. M.; Gol’tsman, G. N.; Syomash, V. D.; Gershenzon, E. M. Heterodyne detection of THz radiation with a superconducting hot‐electron bolometer mixer 1996 Appl. Phys. Lett. 69 260-262 details   doi
Yagoubov, P.; Kroug, M.; Merkel, H.; Kollberg, E.; Schubert, J.; Hubers, H.-W.; Schwaab, G.; Gol'tsman, G.; Gershenzon, E. Heterodyne measurements of a NbN superconducting hot electron mixer at terahertz frequencies 1999 IEEE Trans. Appl. Supercond. 9 3757-3760 details   doi
Hubers, H.-W.; Semenov, A.; Richter, H.; Schwarz, M.; Gunther, B.; Smirnov, K.; Gol’tsman, G.; Voronov, B. Heterodyne receiver for 3-5 THz with hot-electron bolometer mixer 2004 Proc. SPIE 5498 579-586 details   doi
Pentin, I. V.; Smirnov, A. V.; Ryabchun, S. A.; Gol’tsman, G. N.; Vaks, V. L.; Pripolzin, S. I.; Paveliev, D. G. Heterodyne source of THz range based on semiconductor superlattice multiplier 2011 IRMMW-THz 1-2 details   doi
Lobanov, Y. V.; Shcherbatenko, M. L.; Semenov, A. V.; Kovalyuk, V. V.; Korneev, A. A.; Goltsman, G. N.; Vinogradov, E. A.; Naumov, A. V.; Gladush, M. G.; Karimullin, K. R. Heterodyne spectroscopy with superconducting single-photon detector 2017 EPJ Web Conf. 132 01005 details   doi
Minaeva, O.; Fraine, A.; Korneev, A.; Divochiy, A.; Goltsman, G.; Sergienko, A. High resolution optical time-domain reflectometry using superconducting single-photon detectors 2012 Frontiers in Opt. 2012/Laser Sci. XXVIII Fw3a.39 details   doi
Anfertev, V.; Vaks, V.; Revin, L.; Pentin, I.; Tretyakov, I.; Goltsman, G.; Vinogradov, E. A.; Naumov, A. V.; Gladush, M. G.; Karimullin, K. R. High resolution THz gas spectrometer based on semiconductor and superconductor devices 2017 EPJ Web Conf. 132 02001 (1 to 2) details   doi
Pernice, W.; Schuck, C.; Minaeva, O.; Li, M.; Goltsman, G. N.; Sergienko, A. V.; Tang, H. X. High speed and high efficiency travelling wave single-photon detectors embedded in nanophotonic circuits 2012 arXiv 1108.5299 1-23 details   url
Karasik, B. S.; Milostnaya, I. I.; Zorin, M. A.; Elantev, A. I.; Gol'tsman, G. N.; Gershenzon, E. M. High speed current switching of homogeneous YBaCuO film between superconducting and resistive states 1995 IEEE Trans. Appl. Supercond. 5 3042-3045 details   doi
Gol’tsman, G. N.; Gershenzon, E. M. High speed hot-electron superconducting bolometer 1993 Proc. SPIE 2104 181-182 details   doi
Minaeva, O.; Divochiy, A.; Korneev, A.; Sergienko, A. V.; Goltsman, G. N. High speed infrared photon counting with photon number resolving superconducting single-photon detectors (SSPDs) 2009 CLEO/Europe – EQEC details   doi
Pernice, W.; Schuck, C.; Li, M.; Goltsman, G. N.; Sergienko, A. V.; Tang, H. X. High speed travelling wave single-photon detectors with near-unity quantum efficiency 2011 arXiv 1-14 details   openurl
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 details   doi
Zolotov, P.; Vakhtomin, Yu.; Divochiy, A.; Seleznev, V.; Morozov, P.; Smirnov, K. High-efficiency single-photon detectors based on NbN films 2013 details   doi
Moshkova, M.; Divochiy, A.; Morozov, P.; Vakhtomin, Y.; Antipov, A.; Zolotov, P.; Seleznev, V.; Ahmetov, M.; Smirnov, K. High-performance superconducting photon-number-resolving detectors with 86% system efficiency at telecom range 2019 J. Opt. Soc. Am. B 36 B20 details   doi
Pernice, W. H. P.; Schuck, C.; Minaeva, O.; Li, M.; Goltsman, G. N.; Sergienko, A. V.; Tang, H. X. High-speed and high-efficiency travelling wave single-photon detectors embedded in nanophotonic circuits 2012 Nat. Commun. 3 1325 (1 to 10) details   doi
Feautrier, P.; le Coarer, E.; Espiau de Lamaestre, R.; Cavalier, P.; Maingault, L.; Villégier, J-C.; Frey, L.; Claudon, J.; Bergeard, N.; Tarkhov, M.; Poizat, J-P. High-speed superconducting single photon detectors for innovative astronomical applications 2008 J. Phys.: Conf. Ser. 97 10 details   openurl
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 details   url
Finkel, M. I.; Maslennikov, S. N.; Vachtomin, Yu. B.; Svechnikov, S. I.; Smirnov, K. V.; Seleznev, V. A.; Korotetskaya, Yu. P.; Kaurova, N. S.; Voronov, B. M.; Gol'tsman, G. N. Hot electron bolometer mixer for 20 – 40 THz frequency range 2005 Proc. 16th Int. Symp. Space Terahertz Technol. 393-397 details   url
Baselmans, J. J. A.; Hajenius, M.; Gao, J. R.; Baryshev, A.; Kooi, J.; Klapwijk, T. M.; de Korte, P. A. J.; Voronov, B.; Gol’tsman, G. Hot electron bolometer mixers with improved interfaces: sensitivity, LO power and stability 2004 Proc. 15th Int. Symp. Space Terahertz Technol. 17-24 details   url
Yagoubov, P.; Kroug, M.; Merkel, H.; Kollberg, E.; Schubert, J.; Hubers, H. W.; Svechnikov, S.; Voronov, B.; Gol'tsman, G.; Wang, Z. Hot electron bolometric mixers based on NbN films deposited on MgO substrates 1999 Inst. Phys. Conf. Ser. 167 687-690 details   url
Gol'tsman, G. N. Hot electron bolometric mixers: new terahertz technology 1999 Infrared Physics & Technology 40 199-206 details   doi
Gerecht, E.; Musante, C. F.; Schuch, R.; Lutz, C. R.; Jr.; Yngvesson, K. S.; Mueller, E. R.; Waldivian, J.; Gol'tsman, G. N.; Voronov, B. M.; Gershenzon, E. M. Hot electron detection and mixing experiments in NbN at 119 micrometer wavelength 1995 Proc. 6th Int. Symp. Space Terahertz Technol. 284-293 details   url
Pentin, I.; Vakhtomin, Y.; Seleznev, V.; Smirnov, K. Hot electron energy relaxation time in vanadium nitride superconducting film structures under THz and IR radiation 2020 Sci. Rep. 10 16819 details   doi
Ekström, H.; Kroug, M.; Belitsky, V.; Kollberg, E.; Olsson, H.; Goltsman, G.; Gershenzon, E.; Yagoubov, P.; Voronov, B.; Yngvesson, S. Hot electron mixers for THz applications 1996 Proc. 30th ESLAB 207-210 details   url
Kollberg, Erik L.; Gershenzon, E.; Goltsman, G.; Yngvesson, K. S. Hot electron mixers, the potential competition 1992 Proc. ESA Symp. on Photon Detectors for Space Instrumentation 201-206 details   url
Karasik, B. S.; Gol'tsman, G. N.; Voronov, B. M.; Svechnikov, S. I.; Gershenzon, E. M.; Ekstrom, H.; Jacobsson, S.; Kollberg, E.; Yngvesson, K. S. Hot electron quasioptical NbN superconducting mixer 1995 IEEE Trans. Appl. Supercond. 5 2232-2235 details   doi
Gershenzon, E. M.; Gol'tsman, G. N. Hot electron superconductive mixers 1993 Proc. 4th Int. Symp. Space Terahertz Technol. 618-622 details   url
Yagoubov, P.; Hübers, H.-W.; Gol’tsman, G.; Semenov, A.; Gao, J.; Hoogeveen, R.; de Graauw, T.; Birk, M.; Selig, A.; de Korte, P. Hot-electron bolometer mixers – technology for far-infrared heterodyne instruments in future atmospheric chemistry missions 2001 Proc. 3rd Int. Symp. Submillimeter Wave Earth Observation From Space 57-69 details   url
Tretyakov, I. V.; Finkel, M. I.; Ryabchun, S. A.; Kardakova, A. I.; Seliverstov, S. V.; Petrenko, D. V.; Goltsman, G. N. Hot-electron bolometer mixers with in situ contacts 2014 Radiophys. Quant. Electron. 56 591-598 details   doi
Semenov, Alexei D; Gol'tsman, Gregory N; Sobolewski, Roman Hot-electron effect in superconductors and its applications for radiation sensors 2002 Superconductor Science and Technology 15 R1-R16 details   doi
Gershenzon, E. M.; Gol'tsman, G. N. Hot-electron superconducting mixers 1993 Proc. SPIE 2104 329-330 details   doi
Dzardanov, A.; Ekstrom, H.; Gershenzon, E.; Gol'tsman, G.; Jacobsson, S.; Karasik, B.; Kollberg, E.; Okunev, O.; Voronov, B.; Yngvesson, S. Hot-electron superconducting mixers for 20-500 GHz operation 1994 Proc. Int. Conf. on Millimeter and Submillimeter Waves and Appl. 2250 276-278 details   doi
Ferrari, S.; Kovalyuk, V.; Hartmann, W.; Vetter, A.; Kahl, O.; Lee, C.; Korneev, A.; Rockstuhl, C.; Gol'tsman, G.; Pernice, W. Hot-spot relaxation time current dependence in niobium nitride waveguide-integrated superconducting nanowire single-photon detectors 2017 Opt. Express 25 8739-8750 details   openurl
Cherednichenko, S.; Kroug, M.; Yagoubov, P.; Merkel, H.; Kollberg, E.; Yngvesson, K. S.; Voronov, B.; Gol’tsman, G. IF bandwidth of phonon cooled HEB mixers made from NbN films on MgO substrates 2000 Proc. 11th Int. Symp. Space Terahertz Technol. 219-227 details   url
Cao, Aiqin; Jiang, L.; Chen, S.H.; Antipov, S.V.; Shi, S.C. IF gain bandwidth of a quasi-optical NbN superconducting HEB mixer 2007 Proc. International conference on microwave and millimeter wave technology 1-3 details   doi
Baubert, J.; Salez, M.; Merkel, H.; Pons, P.; Cherednichenko, S.; Lecomte, B.; Drakinsky, V.; Goltsman, G.; Leone, B. IF gain bandwidth of membrane-based NbN hot electron bolometers for SHAHIRA 2005 IEEE Trans. Appl. Supercond. 15 507-510 details   doi
Ozhegov, R.; Maslennikov, S.; Morozov, D.; Okunev, O.; Smirnov, K.; Gol'tsman, G. Imaging system for submillimeter wave range 2004 Proc. Tenth All-Russian sceintific conference of student-physicists and young sceintists (VNKSF-10) details   openurl
Maslennikov, S. N.; Morozov, D. V.; Ozhegov, R. V.; Smirnov, K. V.; Okunev, O. V.; Gol’tsman, G. N. Imaging system for submillimeter wave range based on AlGaAs/GaAs hot electron bolometer mixers 2004 Proc. 5-th MSMW 2 558-560 details   doi
Tretyakov, I.; Maslennikov, S.; Semenov, A.; Safir, O.; Finkel, M.; Ryabchun, S.; Kaurova, N.; Voronov, B.; Goltsman, G.; Klapwijk, T. M. Impact of operating conditions on noise and gain bandwidth of NbN HEB mixers 2015 Proc. 26th Int. Symp. Space Terahertz Technol. 39 details   url
Antipov, S.; Trifonov, A.; Krause, S.; Meledin, D.; Kaurova, N.; Rudzinski, M.; Desmaris, V.; Belitsky, V.; Goltsman, G. Improved bandwidth of a 2 THz hot-electron bolometer heterodyne mixer fabricated on sapphire with a GaN buffer layer 2019 Supercond. Sci. Technol. 32 075003 details   doi
Gerecht, E.; Musante, C. F.; Jian, H.; Zhuang, Y.; Yngvesson, K. S.; Dickinson, J.; Goyette, T.; Waldman, J.; Yagoubov, P. A.; Gol'tsman, G. N.; Voronov, B. M.; Gershenzon, E. M. Improved characteristics of NbN HEB mixers integrated with log-periodic antennas 1999 Proc. 10th Int. Symp. Space Terahertz Technol. 200-207 details   url
Hajenius, M.; Baselmans, J. J. A.; Gao, J. R.; Klapwijk, T. M.; de Korte, P. A. J.; Voronov, B.; Gol’tsman, G. Improved NbN phonon cooled hot electron bolometer mixers 2003 Proc. 14th Int. Symp. Space Terahertz Technol. 413-423 details   url
Yang, Z. Q.; Hajenius, M.; Baselmans, J. J. A.; Gao, J.R.; Klapwijk, T. M.; Voronov, B.; Gol’tsman, G. Improved sensitivity of NbN hot electron bolometer mixers by vacuum baking 2005 Proc. 16th Int. Symp. Space Terahertz Technol. 222-225 details   url
Budyanskij, M. Ya.; Sejdman, L. A.; Voronov, B. M.; Gubkina, T. O. Increase of reproducibility in production of superconducting thin films of niobium nitride 1992 Sverkhprovodimost': Fizika, Khimiya, Tekhnika 5 1950-1954 details   url
Hajenius, M.; Baselmans, J. J. A.; Gao, J. R.; Klapwijk, T. M.; de Korte 2, P. A. J.; Voronov, B.; Gol’tsman, G. Increased bandwidth of NbN phonon cooled hot electron bolometer mixers 2004 Proc. 15th Int. Symp. Space Terahertz Technol. 381-386 details   url
Rosfjord, K. M.; Yang, J. K. W.; Dauler, E. A.; Anant, V.; Berggren, K. K.; Kerman, A. J.; Voronov, B. M.; Gol’tsman, G. N. Increased detection efficiencies of nanowire single-photon detectors by integration of an optical cavity and anti-reflection coating 2006 CLEO/QELS JTuF2 (1 to 2) details   doi
Select All    Deselect All
List View
 |   | 
   print

Save Citations:
Export Records: