光探测
石墨烯
光电流
皮秒
材料科学
光电子学
异质结
范德瓦尔斯力
量子效率
载流子
纳米技术
光电探测器
光学
激光器
化学
物理
分子
有机化学
作者
Mathieu Massicotte,Peter Schmidt,Fabien Vialla,Kevin G. Schädler,Antoine Reserbat‐Plantey,Kenji Watanabe,Takashi Taniguchi,Klaas‐Jan Tielrooij,Frank H. L. Koppens
标识
DOI:10.1038/nnano.2015.227
摘要
Two-dimensional crystals such as graphene and transition-metal dichalcogenides demonstrate a range of unique and complementary optoelectronic properties. Assembling different two-dimensional materials in vertical heterostructures enables the combination of these properties in one device, thus creating multifunctional optoelectronic systems with superior performance. Here, we demonstrate that graphene/WSe2/graphene heterostructures ally the high photodetection efficiency of transition-metal dichalcogenides with a picosecond photoresponse comparable to that of graphene, thereby optimizing both speed and efficiency in a single photodetector. We follow the extraction of photoexcited carriers in these devices using time-resolved photocurrent measurements and demonstrate a photoresponse time as short as 5.5 ps, which we tune by applying a bias and by varying the transition-metal dichalcogenide layer thickness. Our study provides direct insight into the physical processes governing the detection speed and quantum efficiency of these van der Waals heterostuctures, such as out-of-plane carrier drift and recombination. The observation and understanding of ultrafast and efficient photodetection demonstrate the potential of hybrid transition-metal dichalcogenide-based heterostructures as a platform for future optoelectronic devices.
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