Author:
Yang Bo,Zhao Chenxiao,Xia Bing,Ma Haiyang,Chen Hongyuan,Cai Jie,Yang Hao,Liu Xiaoxue,Liu Liang,Guan Dandan,Wang Shiyong,Li Yaoyi,Liu Canhua,Zheng Hao,Jia Jinfeng
Abstract
AbstractIntroducing superconductivity into two-dimensional (2D) films with nontrivial topology has been intensively pursued as one of the feasible scenarios to realize 1D topological superconductor. Prevailing endeavors mostly exploit the external gating or proximity effect of a traditional superconductor, by which the critical temperatures ($T_{\mathrm{c}}$
T
c
) are limited to several Kelvin range. Here, we report on the discovery of interface-enhanced superconductivity in monolayer 1T′-MoTe2 film. A thermally driven phase transition from Mo6Te6 nanowires to 1T′-MoTe2 films, grown on SrTiO3(001) surface by the molecular beam epitaxial methods, is demonstrated. A combined study of scanning tunneling microscopy/spectroscopy, electrical transport and magnetization measurements indicates the $T_{\mathrm{c}}$
T
c
of MoTe2 film is around 30 K, two orders of magnitude larger than its 3D counterpart crystal. This study shows that interfacial engineering is an efficient way to tune monolayer 1T′-MoTe2 film into superconducting states, and thus may pave the way toward higher-$T_{\mathrm{c}}$
T
c
1D intrinsic topological superconductivity.
Funder
National Natural Science Foundation of China
Ministry of Science and Technology of the People's Republic of China
Strategic Priority Research Program of Chinese Academy of Sciences
Science and Technology Commission of Shanghai Municipality
Innovation program for Quantum Science and Technology
Shanghai Jiao Tong University
Publisher
Springer Science and Business Media LLC
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