English

Visualizing bulk and edge photocurrent flow in anisotropic Weyl semimetals

Materials Science 2023-06-09 v2 Mesoscale and Nanoscale Physics Quantum Physics

Abstract

Materials that rectify light into current in their bulk are desired for optoelectronic applications. In inversion-breaking Weyl semimetals, bulk photocurrents may arise due to nonlinear optical processes that are enhanced near the Weyl nodes. However, the photoresponse of these materials is commonly studied by scanning photocurrent microscopy (SPCM), which convolves the effects of photocurrent generation and collection. Here, we directly image the photocurrent flow inside the type-II Weyl semimetals WTe2 and TaIrTe4 using high-sensitivity quantum magnetometry with nitrogen-vacancy center spins. We elucidate an unknown mechanism for bulk photocurrent generation termed the anisotropic photothermoelectric effect (APTE), where unequal thermopowers along different crystal axes drive intricate circulations of photocurrent around the photoexcitation. Using simultaneous SPCM and magnetic imaging at the sample's interior and edges, we visualize how the APTE stimulates the long-range photocurrent collected in our Weyl semimetal devices through the Shockley-Ramo theorem. Our results highlight an overlooked, but widely relevant source of current flow and inspire novel photodetectors using homogeneous materials with anisotropy.

Keywords

Cite

@article{arxiv.2203.17176,
  title  = {Visualizing bulk and edge photocurrent flow in anisotropic Weyl semimetals},
  author = {Yu-Xuan Wang and Xin-Yue Zhang and Chunhua Li and Xiaohan Yao and Ruihuan Duan and Thomas K. M. Graham and Zheng Liu and Fazel Tafti and David Broido and Ying Ran and Brian B. Zhou},
  journal= {arXiv preprint arXiv:2203.17176},
  year   = {2023}
}

Comments

Revised submitted version; 17 pages, 4 main figures, 5 supporting figures