论文标题
在石墨烯/ws $ _2 $异质结构中,泵 - 能量依赖的超快电荷转移后的长寿命电荷分离
Long-Lived Charge Separation Following Pump-Energy Dependent Ultrafast Charge Transfer in Graphene/WS$_2$ Heterostructures
论文作者
论文摘要
范德华(Van der Waals)的异质结构包括石墨烯和过渡金属二甲构基(TMDC)最近显示出对高性能光电应用的巨大希望。但是,对设备操作的关键过程,即界面电荷转移(CT)和重组的深入了解仍然难以捉摸。在这里,我们通过补充石墨烯中的Ultrafast Terahertz光电导率和PhotoExcitation后WS $ _2 $中的瞬态吸收动力学来研究石墨烯-WS $ _2 $异质结构中的这些过程。我们发现,跨石墨烯-ws $ _2 $接口的CT通过用于亚exciton激发的照片 - 热发射,以及从WS $ _2 $的直接孔传输到高于A-Exciton激发的石墨烯的价值带。值得注意的是,我们观察到CT之后的异质结构中的分离电荷非常长:超过1 ns,与以前的研究中报告的〜1 ps电荷分离相比。这导致石墨烯的有效光摄影。这些发现提供了相关的见解,以进一步优化光电设备的性能,特别是光电检测。
Van der Waals heterostructures consisting of graphene and transition metal dichalcogenides (TMDCs) have recently shown great promise for high-performance optoelectronic applications. However, an in-depth understanding of the critical processes for device operation, namely interfacial charge transfer (CT) and recombination, has so far remained elusive. Here, we investigate these processes in graphene-WS$_2$ heterostructures, by complementarily probing the ultrafast terahertz photoconductivity in graphene and the transient absorption dynamics in WS$_2$ following photoexcitation. We find that CT across graphene-WS$_2$ interfaces occurs via photo-thermionic emission for sub-A-exciton excitation, and direct hole transfer from WS$_2$ to the valence band of graphene for above-A-exciton excitation. Remarkably, we observe that separated charges in the heterostructure following CT live extremely long: beyond 1 ns, in contrast to ~1 ps charge separation reported in previous studies. This leads to efficient photogating of graphene. These findings provide relevant insights to optimize further the performance of optoelectronic devices, in particular photodetection.