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范德华MoSe₂/WSe₂异质双层中的相干声子

Coherent Phonons in van der Waals MoSe/WSe Heterobilayers.

作者信息

Li Changxiu, Scherbakov Alexey V, Soubelet Pedro, Samusev Anton K, Ruppert Claudia, Balakrishnan Nilanthy, Gusev Vitalyi E, Stier Andreas V, Finley Jonathan J, Bayer Manfred, Akimov Andrey V

机构信息

Experimentelle Physik 2, Technische Universität Dortmund, Otto-Hahn-Str. 4a, 44227 Dortmund, Germany.

Laboratoire d'Acoustique de l'Université du Mans (LAUM), UMR CNRS 6613, Institut d'Acoustique - Graduate School (IA-GS), Le Mans Université, 72085 Le Mans, France.

出版信息

Nano Lett. 2023 Sep 13;23(17):8186-8193. doi: 10.1021/acs.nanolett.3c02316. Epub 2023 Aug 21.

Abstract

The increasing role of two-dimensional (2D) devices requires the development of new techniques for ultrafast control of physical properties in 2D van der Waals (vdW) nanolayers. A special feature of heterobilayers assembled from vdW monolayers is femtosecond separation of photoexcited electrons and holes between the neighboring layers, resulting in the formation of Coulomb force. Using laser pulses, we generate a 0.8 THz coherent breathing mode in MoSe/WSe heterobilayers, which modulates the thickness of the heterobilayer and should modulate the photogenerated electric field in the vdW gap. While the phonon frequency and decay time are independent of the stacking angle between the MoSe and WSe monolayers, the amplitude decreases at intermediate angles, which is explained by a decrease in the photogenerated electric field between the layers. The modulation of the vdW gap by coherent phonons enables a new technology for the generation of THz radiation in 2D nanodevices with vdW heterobilayers.

摘要

二维(2D)器件日益重要的作用,需要开发新技术来超快控制二维范德华(vdW)纳米层中的物理性质。由vdW单分子层组装而成的异质双层的一个特殊之处在于,光激发电子和空穴在相邻层之间的飞秒分离,从而形成库仑力。利用激光脉冲,我们在MoSe/WSe异质双层中产生了0.8太赫兹的相干呼吸模式,该模式调制了异质双层的厚度,并且应该会调制vdW间隙中的光生电场。虽然声子频率和衰减时间与MoSe和WSe单分子层之间的堆叠角度无关,但在中间角度时振幅会减小,这可以通过层间光生电场的减小来解释。通过相干声子对vdW间隙进行调制,为利用vdW异质双层在二维纳米器件中产生太赫兹辐射开辟了一项新技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12f4/10510584/373c7fde26fa/nl3c02316_0001.jpg

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