Evidence for moiré intralayer excitons in twisted WSe2/WSe2 homobilayer superlattices

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作者
Biao Wu
Haihong Zheng
Shaofei Li
Junnan Ding
Jun He
Yujia Zeng
Keqiu Chen
Zongwen Liu
Shula Chen
Anlian Pan
Yanping Liu
机构
[1] Central South University,School of Physics and Electronics, Hunan Key Laboratory for Super
[2] Central South University,microstructure and Ultrafast Process
[3] Hunan University,State Key Laboratory of High
[4] The University of Sydney,Performance Complex Manufacturing
[5] The University of Sydney Nano Institute,Department of Applied Physics, School of Physics and Electronics
[6] The University of Sydney,School of Chemical and Biomolecular Engineering
[7] Hunan University,Hunan Institute of Optoelectronic Integration, College of Materials Science and Engineering
[8] Shenzhen Research Institute of Central South University,undefined
[9] A510a,undefined
[10] Virtual University Building,undefined
[11] Southern District,undefined
[12] High-tech Industrial Park,undefined
[13] Yuehai Street,undefined
[14] Nanshan District,undefined
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摘要
Recent advances in twisted van der Waals heterostructure superlattices have emerged as a powerful and attractive platform for exploring novel condensed matter physics due to the interplay between the moiré potential and Coulomb interactions. The moiré superlattices act as a periodic confinement potential in space to capture interlayer excitons (IXs), resulting in moiré exciton arrays, which provide opportunities for quantum emitters and many-body physics. The observation of moiré IXs in twisted transition-metal dichalcogenide (TMD) heterostructures has recently been widely reported. However, the capture and study of the moiré intralayer excitons based on TMD twisted homobilayer (T-HB) remain elusive. Here, we report the observation of moiré intralayer excitons in a WSe2/WSe2 T-HB with a small twist angle by measuring PL spectrum. The multiple split peaks with an energy range of 1.55–1.73 eV are different from that of the monolayer WSe2 exciton peaks. The split peaks were caused by the trapping of intralayer excitons via the moiré potential. The confinement effect of the moiré potential on the moiré intralayer excitons was further demonstrated by the changing of temperature, laser power, and valley polarization. Our findings provide a new avenue for exploring new correlated quantum phenomena and their applications.
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