Simulation analysis of the radiation terahertz wave characteristics of photoconductive antenna materials
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1.Xi'2.'3.an University of Technology;4.Suzhou Nuclear Power Research Institute Co.,Ltd

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Fund Project:

the National Natural Science Foundation of China (No. 62075179) , the Natural Science Foundation of Shaanxi Provincial Department of Education (Nos. 22JS026 and 22JS027).

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    Abstract:

    The photoconductive antenna is a kind of widely used broadband terahertz (THz) radiation source in THz time-domain spectroscopy systems,and the substrate material of the antenna is crucial for the characteristics of generated THz wave. The widely used photoconductive antenna material is the second generation semiconductor of GaAs, while the third-generation semiconductor has a larger band gap, which is more advantageous for improving the power of THz wave from photoconductive antenna. In this work, the current surge model of large-aperture photoconductive antennas was used to simulate the characteristics of THz waves radiated by photoconductive antenna made by commonly used SI-GaAs and LT-GaAs, and the third-generation semiconductors (ZnSe, GaN, SiC) that are expected to be used in the future for photoconductive antennas. The results show that under the same bias electric field and their respective highest pump laser flux, LT-GaAs antenna generates the THz waves with the highest amplitude and widest frequency. The photoconductive antenna made by third-generation semiconductor materials can withstand higher bias electric fields, and the intensity of radiated THz waves is much greater than that from GaAs antennas. This work provides theoretical guidance for the development of new third-generation semiconductor photoconductive antennas.

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History
  • Received:October 19,2023
  • Revised:December 10,2023
  • Adopted:December 13,2023
  • Online:
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