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Dive into the research topics where Sergey V. Antipov is active.

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Featured researches published by Sergey V. Antipov.


Applied Physics Letters | 2005

Direct detection effect in small volume hot electron bolometer mixers

J. J. A. Baselmans; A. Baryshev; S. F. Reker; M. Hajenius; J. R. Gao; T. M. Klapwijk; Yu. Vachtomin; S. N. Maslennikov; Sergey V. Antipov; B. Voronov; Gregory N. Goltsman

We measure the direct detection effect in a small volume (0.15μm×1μm×3.5nm) quasioptical NbN phonon cooled hot electron bolometer mixer at 1.6THz. We find that the small signal sensitivity of the receiver is underestimated by 35% due to the direct detection effect and that the optimal operating point is shifted to higher bias voltages when using calibration loads of 300K and 77K. Using a 200GHz bandpass filter at 4.2K the direct detection effect virtually disappears. This has important implications for the calibration procedure of these receivers in real telescope systems.


IEEE Transactions on Applied Superconductivity | 2003

Superconducting hot-electron bolometer mixer for terahertz heterodyne receivers

Alexei Semenov; Heinz-Wilhelm Hübers; Heiko Richter; Manfred Birk; Michael Krocka; Ulrich Mair; Yuriy B. Vachtomin; Matvey Finkel; Sergey V. Antipov; B. Voronov; K. Smirnov; Natalia Kaurova; Vladimir N. Drakinski; Gregory N. Goltsman

We present recent results showing the development of superconducting NbN hot-electron bolometer mixer for German receiver for astronomy at terahertz frequencies and terahertz limb sounder. The mixer is incorporated into a planar feed antenna, which has either logarithmic spiral or double-slot configuration, and backed on a silicon lens. The hybrid antenna had almost frequency independent and symmetric radiation pattern slightly broader than expected for a diffraction limited antenna. At 2.5 THz the best 2200 K double side-band receiver noise temperature was achieved across a 1 GHz intermediate frequency bandwidth centred at 1.5 GHz. For this operation regime, a receiver conversion efficiency of -17 dB was directly measured and the loss budget was evaluated. The mixer response was linear at load temperatures smaller than 400 K. Implementation of the MgO buffer layer on Si resulted in an increased 5.2 GHz gain bandwidth. The receiver was tested in the laboratory environment by measuring a methanol emission line at 2.5 THz.


IEEE Transactions on Microwave Theory and Techniques | 2006

Characterization of a quasi-optical NbN superconducting HEB mixer

Ling Jiang; Wei Miao; Wen Zhang; Ning Li; Zhen Hui Lin; Qi Jun Yao; Sheng-Cai Shi; Sergey I. Svechnikov; Yury B. Vakhtomin; Sergey V. Antipov; B. Voronov; Natalia Kaurova; Gregory N. Goltsman

In this paper, the performance of a quasi-optical NbN superconducting hot-electron bolometer (HEB) mixer, cryogenically cooled by a close-cycled 4-K refrigerator, is thoroughly investigated at 300, 500, and 850 GHz. The lowest receiver noise temperatures measured at the respective three frequencies are 1400, 900, and 1350 K, which can go down to 659, 413, and 529 K, respectively, after correcting the loss and associated noise contribution of the quasi-optical system before the measured superconducting HEB mixer. The stability of the quasi-optical superconducting HEB mixer is also investigated here. The Allan variance time measured with a local oscillator pumping at 500 GHz and an IF bandwidth of 110 MHz is 1.5 s at the dc-bias voltage exhibiting the lowest noise temperature and increases to 2.5 s at a dc bias twice that voltage.


Terahertz and Gigahertz Electronics and Photonics IV | 2005

NbN phonon-cooled hot-electron bolometer mixer for terahertz heterodyne receivers

Gregory N. Goltsman; Yuriy B. Vachtomin; Sergey V. Antipov; Matvey Finkel; S. N. Maslennikov; K. Smirnov; S.L. Polyakov; Sergey I. Svechnikov; Natalia Kaurova; Elisaveta Vyacheslavovna Grishina; B. Voronov

We present the results of our studies of NbN phonon-cooled HEB mixers at terahertz frequencies. The mixers were fabricated from NbN film deposited on a high-resistivity Si substrate with an MgO buffer layer. The mixer element was integrated with a log-periodic spiral antenna. The noise temperature measurements were performed at 2.5 THz and at 3.8 THz local oscillator frequencies for the 3 x 0.2 μm2 active area devices. The best uncorrected receiver noise temperatures found for these frequencies are 1300 K and 3100 K, respectively. A water vapour discharge laser was used as the LO source. The largest gain bandwidth of 5.2 GHz was achieved for a mixer based on 2 nm thick NbN film deposited on MgO layer over Si substrate. The gain bandwidth of the mixer based on 3.5 nm NbN film deposited on Si with MgO is 4.2 GHz and the noise bandwidth for the same device amounts to 5 GHz. We also present the results of our research into decrease of the direct detection contribution to the measured Y-factor and a possible error of noise temperature calculation. The use of a square nickel cell mesh as an IR-filter enabled us to avoid the effect of direct detection and measure apparent value of the noise temperature which was 16% less than that obtained using conventional black polyethylene IR-filter.


IEEE Transactions on Applied Superconductivity | 2005

Characterization of NbN HEB mixers cooled by a close-cycled 4 Kelvin refrigerator

L. Jiang; J. Li; Weijun Zhang; QiJun Yao; Z.L. Lin; Sheng-Cai Shi; Y.B. Vachtomin; Sergey V. Antipov; Sergey I. Svechnikov; B. Voronov; Gregory N. Goltsman

It is quite beneficial to operate superconducting hot-electron-bolometer (HEB) mixers with a close-cycled 4 Kelvin refrigerator for real applications such as astronomy and atmospheric research. In this paper, a phononcooled NbN HEB mixer (quasioptical type) is thoroughly characterized under such a cooling circumstance. The effects of mechanical vibration, electrical interference, and temperature fluctuation of a two-stage Gifford-McMahon 4 Kelvin refrigerator upon the characteristics of the phononcooled NbN HEB mixer are investigated in particular. Detailed measurement results are presented.


Chinese Physics Letters | 2007

Noise Behaviour of a THz Superconducting Hot-Electron Bolometer Mixer

Zhang Wen; Li Ning; Jiang Ling; Miao Wei; Lin Zhenhui; Yao Qijun; Shi Shengcai; Chen Jian; Wu Peiheng; Sergey I. Svechnikov; Yu. Vachtomin; Sergey V. Antipov; B. Voronov; Gregory N. Goltsman

A quasi-optical superconducting NbN hot-electron bolometer (HEB) mixer is measured in the frequency range of 0.5-2.5 THz for understanding of the frequency dependence of noise temperature of THz coherent detectors. It has been found that noise temperature increasing with frequency is mainly due to the coupling loss between the quasi-optical planar antenna and the superconducting HEB bridge when taking account of non-uniform distribution of high-frequency current. With the coupling loss corrected, the superconducting HEB mixer demonstrates a noise temperature nearly independent of frequency.


IEEE Transactions on Terahertz Science and Technology | 2017

Reduction of Phonon Escape Time for NbN Hot Electron Bolometers by Using GaN Buffer Layers

Sascha Krause; Vladislav Mityashkin; Sergey V. Antipov; Gregory N. Goltsman; Denis Meledin; Vincent Desmaris; Victor Belitsky; Mariusz Rudzinski

In this paper, we investigated the influence of the GaN buffer layer on the phonon escape time of phonon-cooled hot electron bolometers (HEBs) based on NbN material and compared our findings to conventionally employed Si substrate. The presented experimental setup and operation of the HEB close to the critical temperature of the NbN film allowed for the extraction of phonon escape time in a simplified manner. Two independent experiments were performed at GARD/Chalmers and MSPU on a similar experimental setup at frequencies of approximately 180 and 140 GHz, respectively, and have shown reproducible and consistent results. By fitting the normalized IF measurement data to the heat balance equations, the escape time as a fitting parameter has been deduced and amounts to 45 ps for the HEB based on Si substrate as in contrast to a significantly reduced escape time of 18 ps for the HEB utilizing the GaN buffer layer under the assumption that no additional electron diffusion has taken place. This study indicates a high phonon transmissivity of the NbN-to-GaN interface and a prospective increase of IF bandwidth for HEB made of NbN on GaN buffer layers, which is desirable for future THz HEB heterodyne receivers.


international conference on microwave and millimeter wave technology | 2007

IF Gain Bandwidth of a Quasi-Optical NbN Superconducting HEB Mixer

Aiqin Cao; Ling Jiang; S. H. Chen; Sergey V. Antipov; Sheng-Cai Shi

In this paper, the intermediate frequency (IF) gain bandwidth of a quasi-optical NbN superconducting hot-electron bolometer (HEB) mixer is investigated at 500 GHz with an IF system incorporating with a frequency down-converting scheme which is able to sweep the IF signal in a frequency range of 0.3-4 GHz. The IF gain bandwidth of the device is measured to be 1.5 GHz when it is biased at a voltage of the minimum noise temperature, and becomes larger when the bias voltage increases.


international crimean conference microwave and telecommunication technology | 2006

Quasioptical Hot Electron Bolom-Eter Mixers Based on Thin NBN Films for Terahertz Region

Yu. B. Vachtomin; Sergey V. Antipov; S. N. Maslennikov; K. Smirnov; S.L. Polyakov; W. Zhang; Sergey I. Svechnikov; N. Kaurova; E.V. Grishina; B. Voronov; Gregory N. Goltsman

Presented in this paper are the performances of HEB mixers based on 2-3.5 nm thick NbN films integrated with log-periodic spiral antenna. Double side-band receiver noise temperature values are 1300 K and 3100 K at 2.5 THz and at 3.8 THz, respectively. Mixer gain bandwidth is 5.2 GHz. Local oscillator power is 1-3 muW for mixers with different active area


international conference on infrared, millimeter, and terahertz waves | 2004

Noise temperature, gain bandwidth and local oscillator power of NbN phonon-cooled HEB mixer at terahertz frequencies

Yu.B. Vachtomin; Sergey V. Antipov; N. Kaurova; S. N. Maslennikov; K. Smirnov; S.L. Polyakov; Sergey I. Svechnikov; E.V. Grishina; B. Voronov; Gregory N. Goltsman

We present the performances of HEB mixers based on 3.5 nm thick NbN film integrated with log-periodic spiral antenna. The double side-band receiver noise temperature values are 1300 K and 3100 K at 2.5 THz and at 3.8 THz, respectively. The gain bandwidth of the mixer is 4.2 GHz and the noise bandwidth is 5 GHz. The local oscillator power is 1-3 /spl mu/W for mixers with different active area.

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Dive into the Sergey V. Antipov's collaboration.

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B. Voronov

Moscow State Pedagogical University

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Sergey I. Svechnikov

Moscow State Pedagogical University

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Natalia Kaurova

Moscow State Pedagogical University

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S. N. Maslennikov

Moscow State Pedagogical University

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K. Smirnov

Moscow State Pedagogical University

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S.L. Polyakov

Moscow State Pedagogical University

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Matvey Finkel

Moscow State Pedagogical University

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Yuriy B. Vachtomin

Moscow State Pedagogical University

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