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通过氧化条件调控二维过渡金属硫族化合物的形貌

Tuning the morphology of 2D transition metal chalcogenides via oxidizing conditions.

作者信息

Yao Bing, Li Rongsheng, Zhang Chenxi, Zhou Zhenjia, Fu Zihao, Huang Xianlei, Yuan Guowen, Xu Jie, Gao Libo

机构信息

National Laboratory of Solid State Microstructures, Jiangsu Key Laboratory for Nanotechnology, School of Physics, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, People's Republic of China.

出版信息

J Phys Condens Matter. 2022 Mar 3;34(19). doi: 10.1088/1361-648X/ac54e5.

Abstract

Two-dimensional transition metal chalcogenides (TMCs) are emerging as an intriguing platform to realize nascent properties in condensed matter physics, materials science and device engineering. Controllable growing of TMCs becomes increasingly important, especially for the layer number, doping, and morphology. Here, we successfully tune the morphology of MoS, MoSe, WSand WSe, from homogenous films to individual single crystalline grains only via changing the oxidizing growth conditions. The oxidization degrees are determined by the oxygen that adsorbed on substrates and the oxygen concentrations in reaction gas together. We find the homogenous films are easily formed under the reductive conditions, triangular grains prefer the weak oxidizing conditions, and medium oxidizing conditions bring in dendritic grains with higher oxygen doping and inhomogenous photoluminescence intensities from edge to interior regions shown in the dendritic grains. These growth rules under different oxidizing conditions are easily generalized to other TMCs, which also show potential for growing specific TMCs with designed oxygen doping levels.

摘要

二维过渡金属硫族化合物(TMCs)正成为一个引人关注的平台,用于在凝聚态物理、材料科学和器件工程中实现新的特性。TMCs的可控生长变得越来越重要,特别是对于层数、掺杂和形态而言。在这里,我们仅通过改变氧化生长条件,就成功地将MoS、MoSe、WS和WSe的形态从均匀薄膜调整为单个单晶颗粒。氧化程度由吸附在衬底上的氧和反应气体中的氧浓度共同决定。我们发现,在还原条件下容易形成均匀薄膜,三角形颗粒偏好弱氧化条件,而中等氧化条件会产生具有较高氧掺杂的树枝状颗粒,并且树枝状颗粒从边缘到内部区域呈现出不均匀的光致发光强度。不同氧化条件下的这些生长规律很容易推广到其他TMCs,这也显示出在生长具有设计好的氧掺杂水平的特定TMCs方面的潜力。

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