Nonlinear Transport Signatures of Hidden Symmetry Breaking in a Weyl Altermagnet
Yufei Zhao, Zhiqiang Mao, Binghai Yan

TL;DR
This paper introduces a nonlinear transport method based on quantum geometry to detect hidden symmetry breaking in complex materials, exemplified by Ca$_3$Ru$_2$O$_7$, revealing subtle phase distinctions undetectable by conventional techniques.
Contribution
It proposes a novel nonlinear transport approach leveraging quantum geometry to identify hidden symmetry breaking, demonstrated in a Weyl altermagnet with subtle structural differences.
Findings
Ca$_3$Ru$_2$O$_7$ is a Weyl chain semimetal in both phases
Nonlinear conductivities are significantly enhanced in the low-symmetry phase
Longitudinal nonlinear conductivity uniquely signals the low-symmetry phase
Abstract
Phase transitions in solids are often accompanied by structural changes, but subtle lattice distortions can remain hidden from conventional crystallographic probes, hindering the identification of the correct order parameters. A case in point is CaRuO, a correlated polar ruthenate with well-characterized phase transitions, whose ground state structure has recently become a subject of debate. This uncertainty stems from extremely small atomic displacements (0.001 \AA) between competing phases, beyond the resolution of X-ray diffraction, neutron scattering, or optical second-harmonic generation. In this work, we propose a method to detect hidden symmetry breaking by leveraging nonlinear transport induced by quantum geometry. We show that CaRuO is a Weyl chain semimetal in both phases. The low-symmetry phase, classified as an altermagnet by symmetry, features…
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Taxonomy
TopicsMechanical and Optical Resonators · Atomic and Subatomic Physics Research · Cold Atom Physics and Bose-Einstein Condensates
