Chiral singlet superconductivity in the weakly correlated metal LaPt<sub>3</sub>P.

Biswas, P K; Ghosh, S K; Zhao, J Z; Mayoh, D A; Zhigadlo, N D; Xu, Xiaofeng; Baines, C; Hillier, A D et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

Chiral superconductors are novel topological materials with finite angular momentum Cooper pairs circulating around a unique chiral axis, thereby spontaneously breaking time-reversal symmetry. They are rather scarce and usually feature triplet pairing: a canonical example is the chiral p-wave state realized in the A-phase of superfluid He<sup>3</sup>. Chiral triplet superconductors are, however, topologically fragile with the corresponding gapless boundary modes only weakly protected against symmetry-preserving perturbations in contrast to their singlet counterparts. Using muon spin relaxation measurements, here we report that the weakly correlated pnictide compound LaPt<sub>3</sub>P has the two key features of a chiral superconductor: spontaneous magnetic fields inside the superconducting state indicating broken time-reversal symmetry and low temperature linear behaviour in the superfluid density indicating line nodes in the order parameter. Using symmetry analysis, first principles band structure calculation and mean-field theory, we unambiguously establish that the superconducting ground state of LaPt<sub>3</sub>P is a chiral d-wave singlet.