Harnessing the unique features of topological materials for the development of a new generation of topological based devices is a challenge of paramount importance. Using Floquet scattering theory combined with atomistic models we study the interplay among laser illumination, spin, and topology in a two-dimensional material with spin-orbit coupling. Starting from a topological phase, we show how laser illumination can selectively disrupt the topological edge states depending on their spin. This is manifested by the generation of pure spin photocurrents and spin-polarized charge photocurrents under linearly and circularly polarized laser illumination, respectively. Our results open a path for the generation and control of spin-polarized photocurrents.
CITATION STYLE
Berdakin, M., Rodríguez-Mena, E. A., & Foa Torres, L. E. F. (2021). Spin-Polarized Tunable Photocurrents. Nano Letters, 21(7), 3177–3183. https://doi.org/10.1021/acs.nanolett.1c00420
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