单层
超导电性
化学气相沉积
材料科学
石墨烯
纳米技术
悬空债券
凝聚态物理
光电子学
基质(水族馆)
物理
海洋学
地质学
硅
作者
Hong Wang,Xiangwei Huang,Junhao Lin,Jian Cui,Yu Chen,Chao Zhu,Fucai Liu,Qingsheng Zeng,Jiadong Zhou,Peng Yu,Xuewen Wang,Haiyong He,Siu Hon Tsang,Weibo Gao,Kazu Suenaga,Fengcai Ma,Changli Yang,Li Lü,Ting Yu,Edwin Hang Tong Teo
标识
DOI:10.1038/s41467-017-00427-5
摘要
The discovery of monolayer superconductors bears consequences for both fundamental physics and device applications. Currently, the growth of superconducting monolayers can only occur under ultrahigh vacuum and on specific lattice-matched or dangling bond-free substrates, to minimize environment- and substrate-induced disorders/defects. Such severe growth requirements limit the exploration of novel two-dimensional superconductivity and related nanodevices. Here we demonstrate the experimental realization of superconductivity in a chemical vapour deposition grown monolayer material-NbSe2. Atomic-resolution scanning transmission electron microscope imaging reveals the atomic structure of the intrinsic point defects and grain boundaries in monolayer NbSe2, and confirms the low defect concentration in our high-quality film, which is the key to two-dimensional superconductivity. By using monolayer chemical vapour deposited graphene as a protective capping layer, thickness-dependent superconducting properties are observed in as-grown NbSe2 with a transition temperature increasing from 1.0 K in monolayer to 4.56 K in 10-layer.Two-dimensional superconductors will likely have applications not only in devices, but also in the study of fundamental physics. Here, Wang et al. demonstrate the CVD growth of superconducting NbSe2 on a variety of substrates, making these novel materials increasingly accessible.
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