光激发单层石墨烯/MoS2异质结构中电荷分离的太赫兹饱和吸收

IF 4.6 2区 化学 Q2 CHEMISTRY, PHYSICAL
Qi Xi, Jin Yang*, Jiafeng Xie, Xinyao Wang, Feihong Xu, Qi Li, Kai Zhang, Tianwu Wang* and Fuhai Su*, 
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引用次数: 0

摘要

揭示二维材料中太赫兹电磁波与自由载流子之间的非线性相互作用对于高场和高频电子器件的发展至关重要。本文采用时间分辨太赫兹光谱,以强太赫兹脉冲为探针,研究了单层石墨烯/MoS2异质结构中的太赫兹非线性输运动力学。在超快光激发后,界面电荷转移建立了非平衡载流子再分配,在石墨烯中留下自由空穴,并在MoS2中捕获电子。当在峰值电场中使用超过34 kV/cm的强太赫兹脉冲进行探测时,在20 ps的周期内观察到显著的太赫兹饱和吸收。此外,与太赫兹驱动的非线性电流相关的透射太赫兹波形的光致变化表现为实质性的自相位调制。这些非线性响应可归因于石墨烯层电荷转移诱导空穴系统中电子-电子和电子-声子散射导致的快速载流子加热和缓慢载流子冷却之间的竞争。这项工作证明了石墨烯中强大的非线性吸收和过渡金属二硫族化合物中增强的光载流子收获通过利用异质结构构建而产生的优势的集成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Terahertz Saturable Absorption across Charge Separation in Photoexcited Monolayer Graphene/MoS2 Heterostructure

Terahertz Saturable Absorption across Charge Separation in Photoexcited Monolayer Graphene/MoS2 Heterostructure

Unveiling the nonlinear interactions between terahertz (THz) electromagnetic waves and free carriers in two-dimensional materials is crucial for the development of high-field and high-frequency electronic devices. Herein, we investigate THz nonlinear transport dynamics in a monolayer graphene/MoS2 heterostructure using time-resolved THz spectroscopy with intense THz pulses as the probe. Following ultrafast photoexcitation, the interfacial charge transfer establishes a nonequilibrium carrier redistribution, leaving free holes in the graphene and trapping electrons in the MoS2. When probed with intense THz pulses exceeding 34 kV/cm in a peak electric field, significant THz saturable absorption is observed over a period of 20 ps. Furthermore, the photoinduced change in the transmitted THz waveform, linked to the THz-driven nonlinear current, manifests as a substantial self-phase modulation. These nonlinear responses can be attributed to the competition between rapid carrier heating and slow carrier cooling via electron–electron and electron–phonon scattering in the charge-transfer-induced hole system of the graphene layer. This work demonstrates an integration of advantages arising from robust nonlinear absorption in graphene and enhanced photocarrier harvesting in transition metal dichalcogenides by exploiting heterostructure construction.

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来源期刊
The Journal of Physical Chemistry Letters
The Journal of Physical Chemistry Letters CHEMISTRY, PHYSICAL-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
9.60
自引率
7.00%
发文量
1519
审稿时长
1.6 months
期刊介绍: The Journal of Physical Chemistry (JPC) Letters is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, chemical physicists, physicists, material scientists, and engineers. An important criterion for acceptance is that the paper reports a significant scientific advance and/or physical insight such that rapid publication is essential. Two issues of JPC Letters are published each month.
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