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Generation, transport and detection of valley-locked spin photocurrent in WSe2-graphene-Bi2Se3 heterostructures

Cited 31 time in Web of Science Cited 37 time in Scopus
Authors

Cha, Soonyoung; Noh, Minji; Kim, Jehyun; Son, Jangyup; Bae, Hyemin; Lee, Doeon; Kim, Hoil; Lee, Jekwan; Shin, Ho-Seung; Sim, Sangwan; Yang, Seunghoon; Lee, Sooun; Shim, Wooyoung; Lee, Chul-Ho; Jo, Moon-Ho; Kim, Jun Sung; Kim, Dohun; Choi, Hyunyong

Issue Date
2018-10
Publisher
Nature Publishing Group
Citation
Nature Nanotechnology, Vol.13 No.10, pp.910-914
Abstract
Quantum optoelectronic devices capable of isolating a target degree of freedom (DoF) from other DoFs have allowed for new applications in modern information technology. Many works on solid-state spintronics have focused on methods to disentangle the spin DoF from the charge DoF(1), yet many related issues remain unresolved. Although the recent advent of atomically thin transition metal dichalcogenides (TMDs) has enabled the use of valley pseudospin as an alternative DoF(2,3), it is nontrivial to separate the spin DoF from the valley DoF since the time-reversal valley DoF is intrinsically locked with the spin DoF(4). Here, we demonstrate lateral TMD-graphene-topological insulator hetero-devices with the possibility of such a DoF-selective measurement. We generate the valley-locked spin DoF via a circular photogalvanic effect in an electric-double-layer WSe2 transistor. The valley-locked spin photocarriers then diffuse in a submicrometre-long graphene layer, and the spin DoF is measured separately in the topological insulator via non-local electrical detection using the characteristic spin-momentum locking. Operating at room temperature, our integrated devices exhibit a non-local spin polarization degree of higher than 0.5, providing the potential for coupled opto-spin-valleytronic applications that independently exploit the valley and spin DoFs.
ISSN
1748-3387
URI
https://hdl.handle.net/10371/202258
DOI
https://doi.org/10.1038/s41565-018-0195-y
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  • College of Engineering
  • Department of Electrical and Computer Engineering
Research Area 2차원 반도체 소자 및 재료, High-Performance 2D Electronics, Low-Power 2D Electronics, 뉴로모픽 소자 및 응용기술, 저전력 소자 및 소자물리

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