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二硫化钼-石墨烯范德华异质结构中与扭曲角相关的超快电荷转移

Twist-Angle-Dependent Ultrafast Charge Transfer in MoS-Graphene van der Waals Heterostructures.

作者信息

Luo Duan, Tang Jian, Shen Xiaozhe, Ji Fuhao, Yang Jie, Weathersby Stephen, Kozina Michael E, Chen Zhijiang, Xiao Jun, Ye Yusen, Cao Ting, Zhang Guangyu, Wang Xijie, Lindenberg Aaron M

机构信息

Department of Materials Science and Engineering, Stanford University, Stanford, California 94305, United States.

Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory, Menlo Park, California 94025, United States.

出版信息

Nano Lett. 2021 Oct 13;21(19):8051-8057. doi: 10.1021/acs.nanolett.1c02356. Epub 2021 Sep 16.

Abstract

Vertically stacked transition metal dichalcogenide-graphene heterostructures provide a platform for novel optoelectronic applications with high photoresponse speeds. Photoinduced nonequilibrium carrier and lattice dynamics in such heterostructures underlie these applications but have not been understood. In particular, the dependence of these photoresponses on the twist angle, a key tuning parameter, remains elusive. Here, using ultrafast electron diffraction, we report the simultaneous visualization of charge transfer and electron-phonon coupling in MoS-graphene heterostructures with different stacking configurations. We find that the charge transfer timescale from MoS to graphene varies strongly with twist angle, becoming faster for smaller twist angles, and show that the relaxation timescale is significantly shorter in a heterostructure as compared to a monolayer. These findings illustrate that twist angle constitutes an additional tuning knob for interlayer charge transfer in heterobilayers and deepen our understanding of fundamental photophysical processes in heterostructures, of importance for future applications in optoelectronics and light harvesting.

摘要

垂直堆叠的过渡金属二硫属化物-石墨烯异质结构为具有高光响应速度的新型光电器件应用提供了一个平台。此类异质结构中的光致非平衡载流子和晶格动力学是这些应用的基础,但尚未得到充分理解。特别是,这些光响应与扭转角(一个关键的调节参数)之间的关系仍然不清楚。在此,我们利用超快电子衍射技术,报道了不同堆叠构型的MoS-石墨烯异质结构中电荷转移和电子-声子耦合的同步可视化。我们发现,从MoS到石墨烯的电荷转移时间尺度随扭转角变化很大,扭转角越小,转移速度越快,并且表明与单层相比,异质结构中的弛豫时间尺度明显更短。这些发现表明,扭转角构成了异质双层中层间电荷转移的另一个调节旋钮,并加深了我们对异质结构中基本光物理过程的理解,这对于光电子学和光捕获的未来应用具有重要意义。

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