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一种用于制备厘米级二维非层状半导体的通用“气-液”合成策略。

A general "gas-liquid" synthesis strategy towards centimeter-scale two-dimensional non-layered semiconductors.

作者信息

Liu Jiahui, Yuan Jiangbo, Liu Hao, Yuan Zhiyi, Guo Baochuan, Li Shaohui, Cui Qiuhong, Xu Qun, Wei Cong

机构信息

College of Materials Science and Engineering, Zhengzhou University Zhengzhou 450001 China

Key Laboratory of Luminescence and Optical Information, Ministry of Education, Beijing Jiaotong University Beijing 100044 China

出版信息

Chem Sci. 2025 Jun 2. doi: 10.1039/d5sc01700a.

Abstract

Two-dimensional (2D) non-layered semiconductors have attracted tremendous research interest due to their exotic structural and electronic properties compared with their layered counterparts. However, the lack of large-scale growth methods greatly hinders their application. In this work, we have proposed a gas-liquid heterogeneous reaction strategy to suppress the diffusion of the involved reactants, resulting in the anisotropic growth of centimeter-scale 2D non-layered CdS film at the gas-liquid interface. The thickness of the 2D film can be effectively modulated in the range from 10 to 50 nm by adjusting the viscosity of the liquid solvent. A photodetector designed on the CdS film exhibits a high photoswitching ( / ) ratio (up to 2 × 10), high specific detectivity (∼10 Jones) and excellent stability. Moreover, centimeter-scale 2D ZnS, TiO, SnO and even layered MoS were also obtained by designing corresponding reaction systems, illustrating the apparent universality of the "gas-liquid" strategy. Our results pave a novel avenue for the growth of wafer-scale 2D materials, especially non-layered ones, which will foster their potential applications in integrated optoelectronics.

摘要

与层状二维半导体相比,二维(2D)非层状半导体因其独特的结构和电子特性而引起了广泛的研究兴趣。然而,缺乏大规模生长方法极大地阻碍了它们的应用。在这项工作中,我们提出了一种气液异质反应策略来抑制相关反应物的扩散,从而在气液界面实现厘米级二维非层状硫化镉(CdS)薄膜的各向异性生长。通过调节液体溶剂的粘度,二维薄膜的厚度可以在10至50纳米的范围内有效调控。基于硫化镉薄膜设计的光电探测器具有高的光开关(开/关)比(高达2×10)、高比探测率(约10琼斯)和出色的稳定性。此外,通过设计相应的反应体系,还获得了厘米级的二维硫化锌(ZnS)、二氧化钛(TiO)、氧化锡(SnO)甚至层状的二硫化钼(MoS₂),这表明“气液”策略具有明显的通用性。我们的研究结果为晶圆级二维材料,特别是非层状材料的生长开辟了一条新途径,这将推动它们在集成光电子学中的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f20e/12243005/7db0066f35cf/d5sc01700a-f1.jpg

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