Discovery of a three-dimensional topological Dirac semimetal, KZnBi and its surface superconducting state.
ORAL
Abstract
Topological matters with superconducting state provide an exotic platform for realizing Majorana fermions that promise the building block of a quantum computation. Here we report the discovery of a new three-dimensional (3D) topological Dirac semimetal (TDS) material KZnBi, coexisting with a naturally formed superconducting state on the surface under ambient pressure. Using photoemission spectroscopy together with first-principles calculations, a 3D Dirac state with linear band dispersion is identified. The characteristic features of massless Dirac fermions are also confirmed by magnetotransport measurements, exhibiting an extremely small cyclotron mass of m* = 0.012 m0 and a high Fermi velocity of vF = 1.04 × 106 m/s. Interestingly, superconductivity occurs below 0.85 K on the (001) surface, while the bulk remains nonsuperconducting. The captured linear temperature dependence of the upper critical field suggests the possible non-s-wave character of this surface superconductivity. Our discovery serves a distinctive platform to study the interplay between 3D TDS and the superconductivity.
*This work was supported by the Institute for Basic Science (IBS-R011-D1).
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Publication: Junseong Song et al., Coexisence of surface superconducting and three-dimensional topological Dirac states in semimetal KZnBi. Physical Review X 11, 021065 (2021)
Presenters
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Junseong Song
- Center for Integrated Nanostructure Physics, Institute for Basic Science, Suwon 16419, Republic of Korea