材料科学
单层
兴奋剂
三氧化钼
纳米技术
掺杂剂
电致变色装置
图层(电子)
石墨烯
光电子学
数码产品
电致变色
接触电阻
薄板电阻
薄膜
钼
电极
化学
冶金
物理化学
作者
Lili Cai,Connor J. McClellan,Ai Leen Koh,Hong Li,Eilam Yalon,Eric Pop,Xiaolin Zheng
出处
期刊:Nano Letters
[American Chemical Society]
日期:2017-05-24
卷期号:17 (6): 3854-3861
被引量:143
标识
DOI:10.1021/acs.nanolett.7b01322
摘要
Two-dimensional (2D) molybdenum trioxide (MoO3) with mono- or few-layer thickness can potentially advance many applications, ranging from optoelectronics, catalysis, sensors, and batteries to electrochromic devices. Such ultrathin MoO3 sheets can also be integrated with other 2D materials (e.g., as dopants) to realize new or improved electronic devices. However, there is lack of a rapid and scalable method to controllably grow mono- or few-layer MoO3. Here, we report the first demonstration of using a rapid (<2 min) flame synthesis method to deposit mono- and few-layer MoO3 sheets (several microns in lateral dimension) on a wide variety of layered materials, including mica, MoS2, graphene, and WSe2, based on van der Waals epitaxy. The flame-grown ultrathin MoO3 sheet functions as an efficient hole doping layer for WSe2, enabling WSe2 to reach the lowest sheet and contact resistance reported to date among all the p-type 2D materials (∼6.5 kΩ/□ and ∼0.8 kΩ·μm, respectively). These results demonstrate that flame synthesis is a rapid and scalable pathway to growing atomically thin 2D metal oxides, opening up new opportunities for advancing 2D electronics.
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