过渡金属二硫族化合物(TMDCs)异质结构:合成、激子及光电性质

Jianuo Fan, Mengtao Sun
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引用次数: 5

摘要

过渡金属二硫族化合物(TMDCs)具有良好的柔韧性、光吸收性和载流子迁移率,可用于制造可穿戴设备和光电探测器。此外,这些材料的带隙是可调节的,这与堆叠层数有关。通过垂直叠加TMDCs形成范德华异质结构,可以改变材料的性能。与单层TMDC相比,vdW异质结构具有更好的光响应和更高的光电转换效率。与层内激子相比,在vdW异质结构中形成的层间激子具有更长的激子寿命和独特的谷选择性,促进了TMDCs材料在光电、谷电子学、载流子动力学等领域的研究。本文介绍了异质结构的合成方法。讨论了TMDCs异质结构的光电特性、谷动力学、电子特性及其相关应用。不同材料叠合的异质结构、叠合方式和扭转角度都会影响材料的性能。因此,它给材料领域带来了更多的创造力和研究方向。
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Transition Metal Dichalcogenides (TMDCs) Heterostructures: Synthesis, Excitons and Photoelectric Properties
Transition metal dichalcogenides (TMDCs) have good flexibility, light absorption, and carrier mobility, and can be used to fabricate wearable devices and photodetectors. In addition, the band gaps of these materials are adjustable, which are related to the number of stacking layers. The the material properties can be changed by vertically stacking TMDCs to form van der Waals (vdW) heterostructures. Compared with single‐layer TMDC, the vdW heterostructure has better light response and more efficient photoelectric conversion. Interlayer excitons formed in vdW heterostructure have a longer exciton lifetime and unique valley selectivity compared with intralayer excitons, which promotes the research on TMDCs materials in photoelectric field, valley electronics, carrier dynamics, etc. In this paper, the methods of synthesizing heterostructures are introduced. Photoelectric properties, valley dynamics, electronic properties and related applications of TMDCs vdW heterostructures are also discussed. Heterostructures stacked with different materials, stacking modes, and twist angles all can affect the properties. Hence, it brings more creativity and research direction to the material field.
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