3D bulk-resolved $g$-wave magnetic order parameter symmetry in the metallic altermagnet CrSb
Mengmeng Long, Theodore I. Weinberger, Zheyu Wu, Mads F. Hansen, Ran Tao, Mridul Shrestha, Dave Graf, Yurii Skourski, F. Malte Grosche, Alexander G. Eaton

TL;DR
This study uses quantum oscillation measurements to map the 3D order parameter symmetry in the altermagnetic metal CrSb, revealing a $g$-wave symmetry profile associated with its spin-split Fermi surfaces.
Contribution
It demonstrates a bulk-sensitive method to determine the unconventional magnetic order parameter symmetry in an altermagnet, specifically identifying a $g$-wave symmetry in CrSb.
Findings
CrSb exhibits a $g$-wave magnetic order parameter symmetry.
Quantum oscillations can directly map order parameter symmetry in unconventional magnets.
CrSb has low residual resistivity, suitable for spintronic applications.
Abstract
Electronic phases of matter, such as magnetism and superconductivity, are defined and distinguished by their order parameters that quantify the spontaneous symmetry breaking underlying each phase. The simplest cases are the uniform magnetisation of ferromagnets and isotropic gap function of conventional superconductors. Unconventional superconductors often have a nodal gap function, where the gap changes sign at nodes on the Fermi surface. This concept of unconventional or nodal order parameter symmetry has recently been extended to numerous magnetic systems, including altermagnets, in which up- and down-spin species are non-degenerate around the Fermi surface. Here we demonstrate that magnetic quantum oscillation measurements can provide a direct, bulk-sensitive, 3D mapping of the order parameter in an unconventional magnet. By rotating a magnetic field through high- and low-symmetry…
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Taxonomy
TopicsIron-based superconductors research · Topological Materials and Phenomena · 2D Materials and Applications
