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Low-defect-density WS2 by hydroxide vapor phase deposition

Engineering and Technology

Low-defect-density WS2 by hydroxide vapor phase deposition

Y. Wan, E. Li, et al.

Discover groundbreaking advancements in 2D semiconducting monolayers! Researchers have developed a highly efficient method using hydroxide W species for sulfurization, drastically reducing defect density in WS2 monolayers. The results show remarkable electron mobility and substantial on-state current, revolutionizing the potential for industrialization of 2D materials. This innovative work was conducted by Yi Wan, En Li, Zhihao Yu, and other esteemed authors.... show more
Abstract
Two-dimensional (2D) semiconducting monolayers such as transition metal dichalcogenides (TMDs) are promising channel materials to extend Moore's Law in advanced electronics. Synthetic TMD layers from chemical vapor deposition (CVD) are scalable for fabrication but notorious for their high defect densities. Therefore, innovative endeavors on growth reaction to enhance their quality are urgently needed. Here, we report that the hydroxide W species, an extremely pure vapor phase metal precursor form, is very efficient for sulfurization, leading to about one order of magnitude lower defect density compared to those from conventional CVD methods. The field-effect transistor (FET) devices based on the proposed growth reach a peak electron mobility ~200 cm2/Vs (~800 cm2/Vs) at room temperature (15 K), comparable to those from exfoliated flakes. The FET device with a channel length of 100 nm displays a high on-state current of ~400 μA/μm, encouraging the industrialization of 2D materials.
Publisher
Nature Communications
Published On
Jul 18, 2022
Authors
Yi Wan, En Li, Zhihao Yu, Jing-Kai Huang, Ming-Yang Li, Ang-Sheng Chou, Yi-Te Lee, Chien-Ju Lee, Hung-Chang Hsu, Qin Zhan, Areej Aljarb, Jui-Han Fu, Shao-Pin Chiu, Xinran Wang, Juhn-Jong Lin, Ya-Ping Chiu, Wen-Hao Chang, Han Wang, Yumeng Shi, Nian Lin, Yingchun Cheng, Vincent Tung, Lain-Jong Li
Tags
2D materials
semiconducting monolayers
transition metal dichalcogenides
defect density
sulfurization
field-effect transistors
hydroxide vapor phase deposition
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