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激子效应驱动范德华异质结构中的超快动力学。

Excitonic Effect Drives Ultrafast Dynamics in van der Waals Heterostructures.

作者信息

Liu Junyi, Zhang Xu, Lu Gang

机构信息

Department of Physics and Astronomy, California State University Northridge, California 91330-8268, United States.

出版信息

Nano Lett. 2020 Jun 10;20(6):4631-4637. doi: 10.1021/acs.nanolett.0c01519. Epub 2020 May 28.

Abstract

Recent experiments revealed stacking-configuration-independent and ultrafast charge transfer in transition metal dichalcogenides van der Waals (vdW) heterostructures, which is surprising given strong exciton binding energies and large momentum mismatch across the heterojunctions. Previous theories failed to provide a comprehensive physical picture for the charge transfer mechanisms. To address this challenge, we developed a first-principles framework which can capture exciton-phonon interaction in extended systems. We find that excitonic effect does not impede, but actually drives ultrafast charge transfer in vdW heterostructures. The many-body electron-hole interaction affords cooperation among the electrons, which relaxes the constraint on momentum conservation and reduces energy gaps for charge transfer. We uncover a two-step process in exciton dynamics: ultrafast hole transfer followed by much longer relaxation of intermediate "hot" excitons. This work establishes that many-body excitonic effect is crucial to the ultrafast dynamics and provides a basis to understand relevant phenomena in vdW heterostructures.

摘要

最近的实验揭示了过渡金属二硫属化物范德华(vdW)异质结构中与堆叠构型无关的超快电荷转移,鉴于强激子结合能和异质结间的大动量失配,这一结果令人惊讶。先前的理论未能为电荷转移机制提供全面的物理图像。为应对这一挑战,我们开发了一个能捕捉扩展系统中激子 - 声子相互作用的第一性原理框架。我们发现,激子效应并不阻碍,反而实际上驱动了vdW异质结构中的超快电荷转移。多体电子 - 空穴相互作用使电子间产生协同作用,这放宽了对动量守恒的限制,并减小了电荷转移的能隙。我们揭示了激子动力学中的两步过程:超快的空穴转移,随后是中间“热”激子长得多的弛豫过程。这项工作表明多体激子效应对于超快动力学至关重要,并为理解vdW异质结构中的相关现象提供了基础。

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