Signatures of the topological s+− superconducting order parameter in the type-II Weyl semimetal Td-MoTe2

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作者
Z. Guguchia
F. von Rohr
Z. Shermadini
A. T. Lee
S. Banerjee
A. R. Wieteska
C. A. Marianetti
B. A. Frandsen
H. Luetkens
Z. Gong
S. C. Cheung
C. Baines
A. Shengelaya
G. Taniashvili
A. N. Pasupathy
E. Morenzoni
S. J. L. Billinge
A. Amato
R. J. Cava
R. Khasanov
Y. J. Uemura
机构
[1] Columbia University,Department of Physics
[2] Princeton University,Department of Chemistry
[3] Laboratory for Muon Spin Spectroscopy,Department of Applied Physics and Applied Mathematics
[4] Paul Scherrer Institute,Department of Physics
[5] Columbia University,Department of Physics
[6] University of California,Condensed Matter Physics and Materials Science Department
[7] Tbilisi State University,undefined
[8] Andronikashvili Institute of Physics of I. Javakhishvili Tbilisi State University,undefined
[9] Brookhaven National Laboratory,undefined
来源
Nature Communications | / 8卷
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摘要
In its orthorhombic Td polymorph, MoTe2 is a type-II Weyl semimetal, where the Weyl fermions emerge at the boundary between electron and hole pockets. Non-saturating magnetoresistance and superconductivity were also observed in Td-MoTe2. Understanding the superconductivity in Td-MoTe2, which was proposed to be topologically non-trivial, is of eminent interest. Here, we report high-pressure muon-spin rotation experiments probing the temperature-dependent magnetic penetration depth in Td-MoTe2. A substantial increase of the superfluid density and a linear scaling with the superconducting critical temperature Tc is observed under pressure. Moreover, the superconducting order parameter in Td-MoTe2 is determined to have 2-gap s-wave symmetry. We also exclude time-reversal symmetry breaking in the superconducting state with zero-field μSR experiments. Considering the strong suppression of Tc in MoTe2 by disorder, we suggest that topologically non-trivial s+− state is more likely to be realized in MoTe2 than the topologically trivial s++ state.
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