| Literature DB >> 36045239 |
Mit H Naik1,2, Emma C Regan1,2,3, Zuocheng Zhang1, Yang-Hao Chan1,2,4, Zhenglu Li1,2, Danqing Wang1,3, Yoseob Yoon1,2, Chin Shen Ong1,2, Wenyu Zhao1, Sihan Zhao5, M Iqbal Bakti Utama1,2,6, Beini Gao1, Xin Wei1, Mohammed Sayyad7, Kentaro Yumigeta6, Kenji Watanabe8,9, Takashi Taniguchi8,9, Sefaattin Tongay7, Felipe H da Jornada10, Feng Wang1,2,11, Steven G Louie12,13.
Abstract
Moiré patterns of transition metal dichalcogenide heterobilayers have proved to be an ideal platform on which to host unusual correlated electronic phases, emerging magnetism and correlated exciton physics. Whereas the existence of new moiré excitonic states is established1-4 through optical measurements, the microscopic nature of these states is still poorly understood, often relying on empirically fit models. Here, combining large-scale first-principles GW (where G and W denote the one-particle Green's function and the screened Coulomb interaction, respectively) plus Bethe-Salpeter calculations and micro-reflection spectroscopy, we identify the nature of the exciton resonances in WSe2/WS2 moiré superlattices, discovering a rich set of moiré excitons that cannot be captured by prevailing continuum models. Our calculations show moiré excitons with distinct characters, including modulated Wannier excitons and previously unidentified intralayer charge-transfer excitons. Signatures of these distinct excitonic characters are confirmed experimentally by the unique carrier-density and magnetic-field dependences of different moiré exciton resonances. Our study highlights the highly non-trivial exciton states that can emerge in transition metal dichalcogenide moiré superlattices, and suggests new ways of tuning many-body physics in moiré systems by engineering excited-states with specific spatial characters.Entities:
Year: 2022 PMID: 36045239 DOI: 10.1038/s41586-022-04991-9
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 69.504