Showing posts with label 3. Show all posts
Showing posts with label 3. Show all posts

Monday, April 27, 2020

Abstract-Smaller antenna-gate gap for higher sensitivity of GaN/AlGaN HEMT terahertz detectors

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Zhipeng Zhang, Xiang Li, Hua Qin, Jinfeng Zhang, Xinxing Li, Yang Shangguan, Lin Jin, Yunfei Sun, V. V. Popov,
(a) Schematic diagram of the GaN/AlGaN HEMT detector including the measurement circuit. (b) Zoom-in view of the central active region.
https://aip.scitation.org/doi/abs/10.1063/1.5142436

We report an attempt to improve the sensitivity of terahertz detection based on self-mixing in antenna-coupled field-effect transistors by enhancing the field-effect factor and the antenna factor with a reduced gate length and a reduced antenna-gate gap, respectively. An optical noise equivalent power (NEP) of 3.7 pW/Hz at 0.65 THz was achieved in a GaN/AlGaN high-electron-mobility transistor (HEMT) with a gate length of 300 nm and an antenna-gate gap of 200 nm at room temperature. It was found that the antenna factor was inversely proportional to the antenna-gate gap, and the responses upon coherent/incoherent terahertz irradiation were well described by the self-mixing model. To fill the NEP gap of 0.1−1 pW/Hz between room-temperature and cryogenic detectors by HEMT-based detectors at room temperature, impedance match needs to be carefully considered.
The authors acknowledge support from the National Natural Science Foundation of China (Nos. 61771466, 61775231, and 61975227), the Youth Innovation Promotion Association CAS (No. 2017372), the Six Talent Peaks Project of Jiangsu Province, China (XXRJ-079), and the Russian Foundation for Basic Research (No. 17-52-53063). The work in the Kotelnikov IRE RAS was carried out within the framework of the state task.

Thursday, May 19, 2016

Abstract-Terahertz transmission resonances in complementary multilayered metamaterial with deep subwavelength interlayer spacing



We introduce a flexible multilayered THz metamaterial designed by using the Babinet's principle with the functionality of narrow band-pass filter. The metamaterial gives us systematic way to design frequency selective surfaces working on intended frequencies and bandwidths. It shows highly enhanced transmission of 80% for the normal incident THz waves due to the strong coupling of the two layers of metamaterial complementary to each other.

Monday, December 14, 2015

Abstract-Free-Standing Metasurfaces for High-Efficiency Transmitarrays for Controlling Terahertz Waves





  1. Shuo Liu1,2, 
  2. Qiang Cheng1,3, 
  3. Quan Xu4,
  4. Tian Qi Wang1,2, 
  5. Liang Liang Du4, 
  6. Kang Luan1,2, 
  7. Yue Hong Xu4, 
  8. Di Bao1,2, 
  9. Xiao Jian Fu1,2, 
  10. Jia Guang Han4, 
  11. Wei Li Zhang3,4 and
  12. Tie Jun Cui1,3,*
Article first published online: 11 DEC 2015
DOI: 10.1002/adom.201500519
http://onlinelibrary.wiley.com/doi/10.1002/adom.201500519/abstract;jsessionid=1E8BB761E0D01A393F30C1F518B17754.f01t04?userIsAuthenticated=false&deniedAccessCustomisedMessage=

An ultrathin free-standing metasurface is proposed to bend the normally incident terahertz wave to an anomalous direction, or to focus plane wave to a point, with high efficiency. The flexibility and endurable nature of the proposed transmitarray make it a promising candidate for various THz applications such as time-domain system or THz imaging devices.