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Role of Spin Hall Effect in the Topological Side Surface Conduction

Authors
Lee, JekwanSim, SangwanPark, SoohyunIn, ChihunCho, SeungwanLee, SeungminCha, SoonyoungLee, SoounKim, HoilKim, JehyunShim, WooyoungKim, Jun SungKim, DohunChoi, Hyunyong
Issue Date
Aug-2018
Publisher
American Chemical Society
Keywords
topological insulators; spin relaxation; spin Hall effect; photocurrent; ultrafast
Citation
ACS Photonics, v.5, no.8, pp.3347 - 3352
Indexed
SCIE
SCOPUS
Journal Title
ACS Photonics
Volume
5
Number
8
Start Page
3347
End Page
3352
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/5742
DOI
10.1021/acsphotonics.8b00592
Abstract
The nature of spin transport in the bulk and side surface of three-dimensional topological insulator thin film geometry is a relatively unexplored subject, compared to the extensively studied top and bottom surface states. Here we employ time-and space-resolved helicity-dependent photocurrent measurements to investigate the effect of optically excited bulk carriers on the spin-polarized topological side surface conduction. Time-resolved femtosecond double-pulse excitation reveals that the spin current toward the side surface arises from the bulk-originated spin Hall effect (SHE), whose microscopic origin is governed by an Elliott Yafet-type spin relaxation mechanism via an extrinsic side jump process. Bias-and temperature-dependent measurements further confirm that the spin scattering in Bi2Se3 has multiple sources including impurity and electron phonon scattering. The SHE-assisted side surface spin conduction shows an exceptionally high charge-to-spin conversion efficiency of 35% at 77 K, which may offer new spintronic applications of topological insulators such as spin orbit torque or spin-flip controlled light-emitting devices.
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ERICA 공학대학 (SCHOOL OF ELECTRICAL ENGINEERING)
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