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原子级薄MoS中声子动力学的直接观测

Direct View of Phonon Dynamics in Atomically Thin MoS.

作者信息

Britt Tristan L, Li Qiuyang, René de Cotret Laurent P, Olsen Nicholas, Otto Martin, Hassan Syed Ali, Zacharias Marios, Caruso Fabio, Zhu Xiaoyang, Siwick Bradley J

机构信息

Department of Physics, Center for the Physics of Materials, McGill University, 3600 rue Université, Montréal, Québec H3A 2T8, Canada.

Department of Chemistry, Columbia University, New York City, New York 10027, United States.

出版信息

Nano Lett. 2022 Jun 22;22(12):4718-4724. doi: 10.1021/acs.nanolett.2c00850. Epub 2022 Jun 7.

Abstract

Transition-metal dichalcogenide monolayers and heterostructures are highly tunable material systems that provide excellent models for physical phenomena at the two-dimensional (2D) limit. While most studies to date have focused on electrons and electron-hole pairs, phonons also play essential roles. Here, we apply ultrafast electron diffraction and diffuse scattering to directly quantify, with time and momentum resolution, electron-phonon coupling (EPC) in monolayer molybdenum disulfide and phonon transport from the monolayer to a silicon nitride substrate. Optically generated hot carriers result in a profoundly anisotropic distribution of phonons in the monolayer within ∼5 ps. A quantitative comparison with ultrafast dynamics simulations reveals the essential role of dielectric screening in weakening EPC. Thermal transport from the monolayer to the substrate occurs with the phonon system far from equilibrium. While screening in 2D is known to strongly affect equilibrium properties, our findings extend this understanding to the dynamic regime.

摘要

过渡金属二硫属化物单层和异质结构是高度可调节的材料体系,为二维(2D)极限下的物理现象提供了出色的模型。虽然迄今为止大多数研究都集中在电子和电子 - 空穴对上,但声子也起着至关重要的作用。在这里,我们应用超快电子衍射和漫散射,以时间和动量分辨率直接量化单层二硫化钼中的电子 - 声子耦合(EPC)以及从单层到氮化硅衬底的声子输运。光生热载流子在约5皮秒内导致单层中声子的强烈各向异性分布。与超快动力学模拟的定量比较揭示了介电屏蔽在削弱EPC中的重要作用。从单层到衬底的热输运发生在声子系统远离平衡的情况下。虽然已知二维中的屏蔽会强烈影响平衡性质,但我们的发现将这种理解扩展到了动态 regime。 (注:这里“dynamic regime”直译为“动态 regime”,可能需要结合具体语境进一步明确其准确含义,比如“动态状态”之类的表述,但按照要求未添加额外解释。)

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