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Optoelectronic Manifestation of Orbital Angular Momentum Driven by Chiral Hopping in Helical Se Chains

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Abstract
Chiral materials have garnered significant attention in the field of condensed matter physics. Nevertheless, the magnetic moment induced by the chiral spatial motion of electrons in helical materials, such as elemental Te and Se, remains inadequately understood. In this work, we investigate the development of quantum angular momentum enforced by chirality by using static and time-dependent density functional theory calculations for an elemental Se chain. Our findings reveal the emergence of an unconventional orbital texture driven by the chiral geometry, giving rise to a nonvanishing current-induced orbital moment. By incorporating spin–orbit coupling, we demonstrate that current-induced spin accumulation arises in the chiral chain, which fundamentally differs from the conventional Edelstein effect. Furthermore, we demonstrate optoelectronic detection of the orbital angular momentum in the chiral Se chain, providing an alternative to the interband Berry curvature, which is ill-defined in low dimensions.
Author(s)
Kim, BumseopShin, DongbinNamgung, SeonPark, NoejungKim, Kyoung-WhanKim, Jeongwoo
Issued Date
2023-09
Type
Article
DOI
10.1021/acsnano.3c03893
URI
https://scholar.gist.ac.kr/handle/local/10027
Publisher
American Chemical Society
Citation
ACS Nano, v.17, no.19, pp.18873 - 18882
ISSN
1936-0851
Appears in Collections:
Department of Physics and Photon Science > 1. Journal Articles
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