4.7 Article

Unveiling exceptionally robust valley contrast in AA- and AB-stacked bilayer WS2

期刊

NANOSCALE HORIZONS
卷 4, 期 2, 页码 396-403

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8nh00306h

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资金

  1. National Natural Science Foundation of China [61774040, 11774170]
  2. Ministry of Education (MOE) Tier 1 [RG199/17]
  3. National Young 1000 Talent Plan of China
  4. Shanghai Municipal Natural Science Foundation [16ZR1402500]
  5. Opening project of the State Key Laboratory of Functional Materials for Informatics
  6. Shanghai Institute of Microsystem and Information Technology
  7. Chinese Academy of Sciences
  8. China Postdoctoral Science Foundation [2018M631829]
  9. DICP
  10. Six Talent Peaks project in Jiangsu Province [51235079]
  11. 100 Foreign Talents Project in Jiangsu Province [51235228]

向作者/读者索取更多资源

Valleytronics is a particularly interesting field that employs the valley degree of freedom for information manipulation. The fascinating prospects for realizing valleytronic devices have inspired persistent efforts towards exploring material systems with robust valley polarization. Monolayer transition metal dichalcogenides (TMDs) obey the well-known valley-dependent selection rule as a result of their inversion asymmetry. However, for inversionsymmetric bilayer tungsten-based TMDs, highly selective valley polarization has been surprisingly observed and is not yet fully understood. Here we systematically study the origin of the anomalously high valley polarization in bilayer WS2 by temperature-dependent polarization-resolved photoluminescence measurements. It is found that acoustic phonons play a critical role in the valley polarization of bilayer WS2. For some WS2 bilayers with relatively small intensity ratios of indirect to direct bandgap emission, acoustic phonons could remarkably assist the intervalley scattering process and smear the valley contrast. On the other hand, in other bilayers, which show obvious indirect band gap emission, the indirect optical transition process depletes the phonon mode at the K point dramatically and results in anomalously robust valley polarization in bilayer WS2. These results help recognize the crucial role of electron-phonon coupling in intervalley relaxation in bilayer WS2 and provide new insights into the future design of valleytronic devices based on two-dimensional TMDs.

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