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Photothermoelectric effect driven self-powered broadband photodetection in 1T′-MoTe2 with asymmetric electrodes

  • Youqi Zhang
  • , Lan Li
  • , Yinuo Zhang
  • , Yifan Liu
  • , Yunan Lin
  • , Xutao Zhang
  • , Yongqi Hu
  • , Xiaoqiang Sun
  • , Bingyan Ai
  • , Yi Pan
  • Xi'an Jiaotong University

科研成果: 期刊稿件文章同行评审

4 引用 (Scopus)

摘要

Photothermoelectric (PTE) detection provides a versatile platform for uncooled ultra-broadband photosensing applications. The responsivity and speed of PTE-based photodetectors can be significantly enhanced by introducing two-dimensional (2D) topological Weyl semimetals owing to their unique tilting Weyl cones, high carrier mobilities, and hot-carrier-assisted transport. However, the requirement of localized illumination and complex device fabrication processes still hinder their broader application. Here, a high-performance 1T′-MoTe2 PTE-based detector with asymmetric electrodes is constructed by employing ultra-high vacuum stencil lithography. The asymmetry is achieved by leveraging differential doping efficiencies at the metal contacts, breaking the mirror symmetry of the Seebeck coefficient profile across the channel. This architecture enables the generation of a self-powered photocurrent even under global illumination conditions. The detector shows a broadband response from 350 to 1200 nm, achieving a responsivity of 8.22 mA W−1 and a detectivity of 7.11 × 109 Jones. Furthermore, it demonstrates fast response dynamics with a rising time of 15.4 μs and a decay time of 8.4 μs. Our proposed strategy opens up the application of 2D Weyl semimetals in PTE-based photodetectors with the advantage of self-powering, broadband, and fast response.

源语言英语
页(从-至)15905-15913
页数9
期刊Nanoscale
17
26
DOI
出版状态已出版 - 5 6月 2025

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