Ultrafast non-excitonic valley Hall effect in MoS2/WTe2 heterobilayers

The valley Hall effect (VHE) in two-dimensional (2D) van der Waals (vdW) crystals is a promising approach to study the valley pseudospin. Most experiments so far have used bound electron-hole pairs (excitons) through local photoexcitation. However, the valley depolarization of such excitons is fast,...

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Veröffentlicht in:Nature communications 2021-03, Vol.12 (1), p.1635-1635, Article 1635
Hauptverfasser: Lee, Jekwan, Heo, Wonhyeok, Cha, Myungjun, Watanabe, Kenji, Taniguchi, Takashi, Kim, Jehyun, Cha, Soonyoung, Kim, Dohun, Jo, Moon-Ho, Choi, Hyunyong
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Sprache:eng
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Zusammenfassung:The valley Hall effect (VHE) in two-dimensional (2D) van der Waals (vdW) crystals is a promising approach to study the valley pseudospin. Most experiments so far have used bound electron-hole pairs (excitons) through local photoexcitation. However, the valley depolarization of such excitons is fast, so that several challenges remain to be resolved. We address this issue by exploiting a unipolar VHE using a heterobilayer made of monolayer MoS 2 /WTe 2 to exhibit a long valley-polarized lifetime due to the absence of electron-hole exchange interaction. The unipolar VHE is manifested by reduced photoluminescence at the MoS 2 A exciton energy. Furthermore, we provide quantitative information on the time-dependent valley Hall dynamics by performing the spatially-resolved ultrafast Kerr-rotation microscopy; we find that the valley-polarized electrons persist for more than 4 nanoseconds and the valley Hall mobility exceeds 4.49 × 10 3  cm 2 /Vs, which is orders of magnitude larger than previous reports. The valley Hall effect in 2D materials is a promising approach for future valleytronic applications, but it is usually based on excitons with short lifetimes. Here, spin polarized electrons are injected from WTe 2 into MoS 2 , leading to a unipolar valley Hall effect with enhanced lifetimes and mobility.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-021-21013-w