Nanoscale Optical Addressing of Valley Pseudospins through Transverse Optical Spin
- Authors
- Gong, Su-Hyun; Komen, Irina; Alpeggiani, Filippo; Kuipers, L.
- Issue Date
- 10-6월-2020
- Publisher
- AMER CHEMICAL SOC
- Keywords
- TMDC materials; WS2; valleytronics; transverse optical spin; spin-momentum locking; ZnO nanowires
- Citation
- NANO LETTERS, v.20, no.6, pp.4410 - 4415
- Indexed
- SCIE
SCOPUS
- Journal Title
- NANO LETTERS
- Volume
- 20
- Number
- 6
- Start Page
- 4410
- End Page
- 4415
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/55034
- DOI
- 10.1021/acs.nanolett.0c01173
- ISSN
- 1530-6984
- Abstract
- Valley pseudospin has emerged as a good quantum number to encode information, analogous to spin in spintronics. Two-dimensional transition metal dichalcogenides (2D TMDCs) recently attracted enormous attention for their easy access to the valley pseudospin through valley-dependent optical transitions. Different ways have been reported to read out the valley pseudospin state. For practical applications, on-chip access to and manipulation of valley pseudospins is paramount, not only to read out but especially to initiate the valley pseudospin state. Here, we experimentally demonstrate the selective on-chip, optical near-field initiation of valley pseudospins at room temperature. We exploit a nanowire optical waveguide, such that the local transverse optical spin of its guided modes selectively excites a specific valley pseudospin. Furthermore, spin-momentum locking of the transverse optical spin enables us to flip valley pseudospins with the opposite propagation direction. Thus, we open up ways to realize integrated hybrid opto-valleytronic devices.
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