Hierarchy of quasi-symmetries and degeneracies in chiral crystal materials CoSi
Lun-Hui Hu, Chunyu Guo, Yan Sun, Claudia Felser, Luis Elcoro, Philip, J. W. Moll, Chao-Xing Liu, and B. Andrei Bernevig

TL;DR
This paper uncovers a hierarchy of quasi-symmetries in CoSi, revealing how approximate symmetries influence degeneracies and nodal structures, with implications for quantum oscillation experiments.
Contribution
It introduces a hierarchical framework of quasi-symmetries in CoSi using perturbation theory, linking symmetries to degeneracies and nodal features in the material.
Findings
Four-fold degeneracy due to SU(2)×SU(2) quasi-symmetry
Protection of nodal planes by U(1) quasi-symmetry
Higher-order perturbations induce small gaps in degeneracies
Abstract
In materials, certain approximated symmetry operations can exist in a lower-order approximation of the effective model but are good enough to influence the physical responses of the system, and these approximated symmetries were recently dubbed "quasi-symmetries" \cite{guo_arxiv_2021}. In this work, we reveal a hierarchy structure of the quasi-symmetries and the corresponding nodal structures that they enforce via two different approaches of the perturbation expansions for the effective model in the chiral crystal material CoSi. In the first approach, we treat the spin-independent linear momentum (k) term as the zero-order Hamiltonian. Its energy bands are four-fold degenerate due to an SU(2)SU(2) quasi-symmetry. We next consider both the k-independent spin-orbit coupling (SOC) and full quadratic-k terms as the perturbation terms and find that the first-order perturbation leads…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Crystallography and Radiation Phenomena · Advanced Chemical Physics Studies
