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Asymmetric hot-carrier thermalization and broadband photoresponse in graphene-2D semiconductor lateral heterojunctions

机译:石墨烯2D半导体横向异质结中的不对称热载流子热化和宽带光响应

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摘要

The massless Dirac electron transport in graphene has led to a variety of unique light-matter interaction phenomena, which promise many novel optoelectronic applications. Most of the effects are only accessible by breaking the spatial symmetry, through introducing edges, p-n junctions, or heterogeneous interfaces. The recent development of direct synthesis of lateral heterostructures offers new opportunities to achieve the desired asymmetry. As a proof of concept, we study the photothermoelectric effect in an asymmetric lateral heterojunction between the Dirac semimetallic monolayer graphene and the parabolic semiconducting monolayer MoS2. Very different hot-carrier cooling mechanisms on the graphene and the MoS2 sides allow us to resolve the asymmetric thermalization pathways of photoinduced hot carriers spatially with electrostatic gate tunability. We also demonstrate the potential of graphene-2D semiconductor lateral heterojunctions as broadband infrared photodetectors. The proposed structure shows an extreme in-plane asymmetry and provides a new platform to study light-matter interactions in low-dimensional systems.
机译:石墨烯中无质量的狄拉克电子传输导致了许多独特的光-质相互作用现象,这有望实现许多新颖的光电应用。大多数效果只能通过破坏空间对称性,通过引入边缘,p-n结或异构界面来获得。横向异质结构直接合成的最新发展为实现所需的不对称性提供了新的机会。作为概念的证明,我们研究了Dirac半金属单层石墨烯和抛物半导体单层MoS2之间不对称横向异质结中的光热电效应。石墨烯和MoS2侧面上非常不同的热载流子冷却机制使我们能够利用静电门可调性在空间上解决光诱导热载流子的不对称热化途径。我们还展示了石墨烯2D半导体横向异质结作为宽带红外光电探测器的潜力。所提出的结构表现出极端的平面内不对称性,并提供了一个新的平台来研究低维系统中的物质相互作用。

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