A metamaterial absorber with electrically and thermally tunable absorption frequency and absorptivity
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Affiliation:

1.College of Science, Yunnan Agricultural University, Kunming 650201, China;2.School of Information Science and Engineering, Yunnan University, Kunming 650091, China;3.College of Big Data, Yunnan Agricultural University, Kunming 650201, China

Clc Number:

TB39

Fund Project:

Supported by the National Natural Science Foundation of China (NSFC) (61461052, 11564044, and 61863035), Yunnan Provincial Department of Science and Technology Agricultural Joint Special Project (202101BD070001-064) and Yunnan Province Basic Research Project (202301AT070495)

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    Abstract:

    A dual-tunable "perfect" metamaterial absorber composed of a "Tian-zi"-shaped bulk Dirac semimetal (BDS) resonator and strontium titanate (STO) is proposed in this work and systematically studied by performing numerical simulations. From the acquired results, it is demonstrated that the absorber can achieve 99% absorption rate at 2.613 1 THz when the BDS Fermi energy is 40 meV and the STO temperature is 400 K. Moreover, both dynamics dual-tuning of the absorption frequency and absorption rate of the absorber can be successfully achieved by varying the BDS Fermi energy level and the STO temperature. Additionally, the absorber''s performance is theoretically analyzed using both coupled mode theory (CMT) and equivalent circuit model (ECM). Finally, the changes in the absorber''s absorption spectrum are further discussed when each parameter of the model is modified, providing thus a solid theoretical basis for the design of dual-tunable filters and absorbers.

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HU Bao-Jing, HUANG Ming, ZHAO Jin-Yan, YANG Li, YANG Yu-Lin. A metamaterial absorber with electrically and thermally tunable absorption frequency and absorptivity[J]. Journal of Infrared and Millimeter Waves,2024,43(2):191~198

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History
  • Received:June 25,2023
  • Revised:February 23,2024
  • Adopted:August 10,2023
  • Online: February 22,2024
  • Published: