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利用温度控制的等离子体硫化法合成用于光电探测器应用的多相MoS异质结构。

Synthesis of multiphase MoS heterostructures using temperature-controlled plasma-sulfurization for photodetector applications.

作者信息

Aydin Kubra, Kanade Chaitanya, Kanade Vinit Kaluram, Bahit Gulgun, Ahn Chisung, Kim Taesung

机构信息

SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon-si, Gyeonggi-do 16419, Republic of Korea.

Department of Nano Science and Technology, Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon-si, Gyeonggi-do 16419, Republic of Korea.

出版信息

Nanoscale. 2023 Nov 9;15(43):17326-17334. doi: 10.1039/d3nr01910a.

DOI:10.1039/d3nr01910a
PMID:37877424
Abstract

Two-dimensional (2D) materials exhibit outstanding performance in photodetectors because of their excellent optical and electronic properties. Specifically, 2D-MoS, a transition metal dichalcogenide, is a prominent candidate for flexible and portable photodetectors based on its inherent phase-dependent tunable optical band gap properties. This research focused on creating high-performance photodetectors by carefully arranging out-of-plane 2D heterostructures. The process involved stacking different phases of MoS (1T and 2H) using controlled temperature during plasma-enhanced chemical vapor deposition. Among the various phase combinations, the best photocurrent response was obtained for the 1T/2H-MoS heterostructure, which exhibited an approximately two-fold higher photocurrent than the 2H/1T-MoS heterostructure and 2H/2H-MoS monostructure. The 1T/2H-MoS heterostructure exhibited a higher photoresponse than the monostructured MoS of the same thickness (1T/1T- and 2H/2H-MoS, respectively). The effect of the stacking sequences of different phases was examined, and their photoperformances were investigated. This study demonstrates that phase engineering in 2D-MoS van der Waals heterostructures has significant potential for developing high-performance photodetectors.

摘要

二维(2D)材料因其优异的光学和电子特性,在光电探测器中表现出卓越的性能。具体而言,二维硫化钼(2D-MoS)作为一种过渡金属二硫属化物,基于其固有的依赖于相的可调光学带隙特性,是柔性便携光电探测器的一个突出候选材料。本研究聚焦于通过精心排列面外二维异质结构来制造高性能光电探测器。该过程涉及在等离子体增强化学气相沉积过程中利用可控温度堆叠不同相的MoS(1T和2H)。在各种相组合中,1T/2H-MoS异质结构获得了最佳的光电流响应,其光电流比2H/1T-MoS异质结构和2H/2H-MoS单结构高出约两倍。1T/2H-MoS异质结构比相同厚度的单结构MoS(分别为1T/1T-和2H/2H-MoS)表现出更高的光响应。研究了不同相的堆叠顺序的影响,并对它们的光性能进行了研究。这项研究表明,二维硫化钼范德华异质结构中的相工程在开发高性能光电探测器方面具有巨大潜力。

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