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Topological crystalline superconductivity in locally noncentrosymmetric CeRh2As2

Kosuke Nogaki, Akito Daido, Jun Ishizuka, Youichi Yanase

DOI 10.1103/PhysRevResearch.3.L032071 · Physical Review Research

T1

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Abstract

Recent discovery of superconductivity in CeRh2As2 clarified an unusual H−T phase diagram with two superconducting phases [Khim et al. Science, 373, 1012 (2021)]. The experimental observation has been interpreted based on the even-odd parity transition characteristic of locally noncentrosymmetric superconductors. Indeed, inversion symmetry is locally broken at the Ce site, and CeRh2As2 molds a class of exotic superconductors. The low-temperature and high-field superconducting phase is a candidate for the odd-parity pair-density-wave state, suggesting a possibility of topological superconductivity like spin-triplet superconductors. In this Letter, we first derive the formula expressing the Z2 invariant of glide symmetric and time-reversal symmetry-broken superconductors by the number of Fermi surfaces on a glide invariant line. Next, we conduct first-principles calculations for the electronic structure of CeRh2As2. Combining the results, we show that the field-induced odd-parity superconducting phase of CeRh2As2 is a platform of topological crystalline superconductivity protected by nonsymmorphic glide symmetry and accompanied by boundary Majorana fermions.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
CeRh2As2

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—Pressure not reportedunknown

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