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Archer JW. Multiple mixer, cryogenic receiver for 200-350 GHz. Rev Sci Instrum. 1983;54(10):1371–6.
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Fedorov G, Gayduchenko I, Titova N, Gazaliev A, Moskotin M, Kaurova N, et al. Carbon nanotube based schottky diodes as uncooled terahertz radiation detectors. Phys Status Solidi B. 2018;255(1):1700227 (1 to 6).
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Fedorov G, Gayduchenko I, Titova N, Moskotin M, Obraztsova E, Rybin M, et al. Graphene-based lateral Schottky diodes for detecting terahertz radiation. In: Berghmans F, Mignani AG, editors. Proc. Optical Sensing and Detection V. Vol 10680. Spie; 2018. p. 30–9.
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Fetterman HR, Tannenwald PE, Clifton BJ, Parker CD, Fitzgerald WD, Erickson NR. Far-ir heterodyne radiometric measurements with quasioptical Schottky diode mixers. Appl Phys Lett. 1978;33(2):151–4.
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Iomdina EN, Goltsman GN, Seliverstov SV, Sianosyan AA, Teplyakova KO, Rusova AA. Study of transmittance and reflectance spectra of the cornea and the sclera in the THz frequency range. J Biomed Opt. 2016;21(9):97002 (1 to 5).
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Shurakov A, Mikhailov D, Belikov I, Kaurova N, Zilberley T, Prikhodko A, et al. Planar Schottky diode with a Γ-shaped anode suspended bridge. In: J. Phys.: Conf. Ser. Vol 1695.; 2020. 012154.
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Tol J van, Brunel L-C, Wylde RJ. A quasioptical transient electron spin resonance spectrometer operating at 120 and 240 GHz. Rev Sci Instrum. 2005;76(7):074101 (1 to 8).
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Treuttel J, Thomas B, Maestrini A, Wang H, Alderman B, Siles JV, et al. A 380 GHz sub-harmonic mixer using MMIC foundry based Schottky diodes transferred onto quartz substrate. In: Proc. 20th Int. Symp. Space Terahertz Technol. Charlottesville, Virginia, USA; 2009.
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