Direct optical detection of Weyl fermion chirality in a topological semimetal
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Author(s) • • • • • • • • •
Ma, Qiong
Xu, Suyang
Chan, Ching-Kit
Zhang, Cheng-Long
Chang, Guoqing
Lin, Yuxuan
Xie, Weiwei
Palacios, Tomás
Lin, Hsin
Jia, Shuang
Date Issued
May 2017
Journal
Nature Physics
Publisher
Springer Nature
Citation
Ma, Qiong et al. “Direct Optical Detection of Weyl Fermion Chirality in a Topological Semimetal.” Nature Physics 13, 9 (May 2017): 842–847 © 2017 Macmillan Publishers Limited, part of Springer Nature
Version
Author's final manuscript
Abstract
A Weyl semimetal is a novel topological phase of matter, in which Weyl fermions arise as pseudo-magnetic monopoles in its momentum space. The chirality of the Weyl fermions, given by the sign of the monopole charge, is central to the Weyl physics, since it directly serves as the sign of the topological number and gives rise to exotic properties such as Fermi arcs and the chiral anomaly. Here, we directly detect the chirality of the Weyl fermions by measuring the photocurrent in response to circularly polarized mid-infrared light. The resulting photocurrent is determined by both the chirality of Weyl fermions and that of the photons. Our results pave the way for realizing a wide range of theoretical proposals for studying and controlling the Weyl fermions and their associated quantum anomalies by optical and electrical means. More broadly, the two chiralities, analogous to the two valleys in two-dimensional materials, lead to a new degree of freedom in a three-dimensional crystal with potential novel pathways to store and carry information.
MIT Department
Massachusetts Institute of Technology. Department of Physics
MIT Materials Research Laboratory
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DOI of Published Version
https://doi.org/10.1038/NPHYS4146