Nanoscrolls of Janus Monolayer Transition Metal Dichalcogenides

单层 杰纳斯 材料科学 纳米技术 过渡金属 透射电子显微镜 开尔文探针力显微镜 结晶学 原子力显微镜 化学 生物化学 催化作用
作者
Masahiko Kaneda,W. Zhang,Zheng Liu,Yanlin Gao,Mina Maruyama,Yusuke Nakanishi,Hiroshi Nakajo,Shuji Aoki,Kota Honda,Tomoya Ogawa,Kazuki Hashimoto,Takahiko Endo,Kohei Aso,Tongmin Chen,Yoshifumi Oshima,Yukiko Yamada‐Takamura,Yasufumi Takahashi,Susumu Okada,Toshiaki Kato,Yasumitsu Miyata
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (4): 2772-2781 被引量:2
标识
DOI:10.1021/acsnano.3c05681
摘要

Tubular structures of transition metal dichalcogenides (TMDCs) have attracted attention in recent years due to their emergent physical properties, such as the giant bulk photovoltaic effect and chirality-dependent superconductivity. To understand and control these properties, it is highly desirable to develop a sophisticated method to fabricate TMDC tubular structures with smaller diameters and a more uniform crystalline orientation. For this purpose, the rolling up of TMDC monolayers into nanoscrolls is an attractive approach to fabricating such a tubular structure. However, the symmetric atomic arrangement of a monolayer TMDC generally makes its tubular structure energetically unstable due to considerable lattice strain in curved monolayers. Here, we report the fabrication of narrow nanoscrolls by using Janus TMDC monolayers, which have an out-of-plane asymmetric structure. Janus WSSe and MoSSe monolayers were prepared by the plasma-assisted surface atom substitution of WSe2 and MoSe2 monolayers, respectively, and then were rolled by solution treatment. The multilayer tubular structures of Janus nanoscrolls were revealed by scanning transmission electron microscopy observations. Atomic resolution elemental analysis confirmed that the Janus monolayers were rolled up with the Se-side surface on the outside. We found that the present nanoscrolls have the smallest diameter of about 5 nm, which is almost the same as the value predicted by the DFT calculation. The difference in work functions between the S- and Se-side surfaces was measured by Kelvin probe force microscopy, which is in good agreement with the theoretical prediction. Strong interlayer interactions and anisotropic optical responses of the Janus nanoscrolls were also revealed by Raman and photoluminescence spectroscopy.
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