| Literature DB >> 33753933 |
Jiamin Quan1, Lukas Linhart1,2, Miao-Ling Lin3, Daehun Lee1, Jihang Zhu1, Chun-Yuan Wang1, Wei-Ting Hsu1, Junho Choi1, Jacob Embley1, Carter Young1, Takashi Taniguchi4, Kenji Watanabe4, Chih-Kang Shih1, Keji Lai1, Allan H MacDonald1, Ping-Heng Tan5, Florian Libisch6, Xiaoqin Li7.
Abstract
In moiré crystals formed by stacking van der Waals materials, surprisingly diverse correlated electronic phases and optical properties can be realized by a subtle change in the twist angle. Here, we discover that phonon spectra are also renormalized in MoS2 twisted bilayers, adding an insight to moiré physics. Over a range of small twist angles, the phonon spectra evolve rapidly owing to ultra-strong coupling between different phonon modes and atomic reconstructions of the moiré pattern. We develop a low-energy continuum model for phonons that overcomes the outstanding challenge of calculating the properties of large moiré supercells and successfully captures the essential experimental observations. Remarkably, simple optical spectroscopy experiments can provide information on strain and lattice distortions in moiré crystals with nanometre-size supercells. The model promotes a comprehensive and unified understanding of the structural, optical and electronic properties of moiré superlattices.Year: 2021 PMID: 33753933 DOI: 10.1038/s41563-021-00960-1
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841