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介观重构莫尔异质结构中的激子。

Excitons in mesoscopically reconstructed moiré heterostructures.

机构信息

Fakultät für Physik, Munich Quantum Center, and Center for NanoScience (CeNS), Ludwig-Maximilians-Universität München, Munich, Germany.

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, P. R. China.

出版信息

Nat Nanotechnol. 2023 Jun;18(6):572-579. doi: 10.1038/s41565-023-01356-9. Epub 2023 Mar 27.

Abstract

Moiré effects in vertical stacks of two-dimensional crystals give rise to new quantum materials with rich transport and optical phenomena that originate from modulations of atomic registries within moiré supercells. Due to finite elasticity, however, the superlattices can transform from moiré-type to periodically reconstructed patterns. Here we expand the notion of such nanoscale lattice reconstruction to the mesoscopic scale of laterally extended samples and demonstrate rich consequences in optical studies of excitons in MoSe-WSe heterostructures with parallel and antiparallel alignments. Our results provide a unified perspective on moiré excitons in near-commensurate semiconductor heterostructures with small twist angles by identifying domains with exciton properties of distinct effective dimensionality, and establish mesoscopic reconstruction as a compelling feature of real samples and devices with inherent finite size effects and disorder. Generalized to stacks of other two-dimensional materials, this notion of mesoscale domain formation with emergent topological defects and percolation networks will instructively expand the understanding of fundamental electronic, optical and magnetic properties of van der Waals heterostructures.

摘要

双层二维晶体的莫尔效应产生了新的量子材料,这些材料具有丰富的传输和光学现象,其起源于莫尔超晶格中原子排列的调制。然而,由于有限的弹性,超晶格可以从莫尔型转变为周期性重构的图案。在这里,我们将这种纳米级晶格重构的概念扩展到横向扩展样品的介观尺度,并在对具有平行和反平行对准的 MoSe-WSe 异质结构中的激子的光学研究中展示了丰富的结果。我们的结果通过确定具有不同有效维度激子特性的畴,为小扭转角的近完全匹配半导体异质结构中的莫尔激子提供了一个统一的视角,并将介观重构确立为具有固有有限尺寸效应和无序的真实样品和器件的一个引人注目的特征。推广到其他二维材料的堆叠,这种具有新兴拓扑缺陷和渗流网络的介观畴形成的概念将富有启发性地扩展对范德华异质结构的基本电子、光学和磁性性质的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4844/10275756/1779065d50ef/41565_2023_1356_Fig1_HTML.jpg

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