An efficient route to prepare suspended monolayer for feasible optical and electronic characterizations of two‐dimensional materials

石墨烯 材料科学 拉曼光谱 基质(水族馆) 单层 表征(材料科学) 二次谐波产生 纳米技术 纳米材料 光电子学 光致发光 光学 海洋学 物理 地质学 激光器
作者
Yuan Huang,Yun‐Kun Wang,Xinyu Huang,Guanhua Zhang,Xu Han,Yang Yang,Yunan Gao,Lei Meng,Yushu Wang,Guangzhou Geng,Liwei Liu,Lin Zhao,Zhihai Cheng,Xinfeng Liu,Zefeng Ren,Huixia Yang,Yufeng Hao,Hongjun Gao,Xingjiang Zhou,Wei Ji
出处
期刊:InfoMat [Wiley]
卷期号:4 (2) 被引量:40
标识
DOI:10.1002/inf2.12274
摘要

Abstract Two‐dimensional (2D) materials are highly sensitive to substrates, interfaces, and the surrounding environments. Suspended 2D materials are free from substrate‐induced effects, thus an ideal approach to study their intrinsic properties. However, it is very challenging to prepare large‐area suspended 2D materials with high efficiency. Here we report a universal method, based on pretreatments of densely patterned hole array substrates with either oxygen‐plasma or gold film deposition, to prepare large‐area suspended mono‐ and few‐layer 2D materials. Multiple structural, optical, and electrical characterization tools were used to fully evaluate the improved performance of various suspended 2D layers. Some of these observations reported in this study are: (1) Observation of a new Raman low frequency mode for the suspended MoS 2 ; (2) Significantly stronger photoluminescence (PL) and second harmonic generation (SHG) signals of suspended WSe 2 , which enables the study of new optical transition processes; (3) The low energy electron diffraction pattern on suspended MoS 2 also exhibits much sharper spots than that on the supported area; and (4) The mobility of suspended graphene device approaches 300 000 cm 2 V −1 s −1 , which is desirable to explore the intrinsic properties of graphene. This work provides an innovative and efficient route for fabricating suspended 2D materials, and we expect that it can be broadly used for studying intrinsic properties of 2D materials and in applications of hybrid active nanophotonic and electronic devices. image
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