Gapped nodal planes drive a large topological Nernst effect in a chiral lattice antiferromagnet

Fuente: arXiv
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Main Authors: Khanh, N. D., Minami, S., Hirschmann, M., Nomoto, T., Jiang, M. C., Yamada, R., Heinsdorf, N., Yamaguchi, D., Hayashi, Y., Okamura, Y., Watanabe, H., Guo, G. Y., Takahashi, Y., Seki, S., Taguchi, Y., Tokura, Y., Arita, R., Hirschberger, M.
Format: Preprint
Published: 2024
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author Khanh, N. D.
Minami, S.
Hirschmann, M.
Nomoto, T.
Jiang, M. C.
Yamada, R.
Heinsdorf, N.
Yamaguchi, D.
Hayashi, Y.
Okamura, Y.
Watanabe, H.
Guo, G. Y.
Takahashi, Y.
Seki, S.
Taguchi, Y.
Tokura, Y.
Arita, R.
Hirschberger, M.
author_facet Khanh, N. D.
Minami, S.
Hirschmann, M.
Nomoto, T.
Jiang, M. C.
Yamada, R.
Heinsdorf, N.
Yamaguchi, D.
Hayashi, Y.
Okamura, Y.
Watanabe, H.
Guo, G. Y.
Takahashi, Y.
Seki, S.
Taguchi, Y.
Tokura, Y.
Arita, R.
Hirschberger, M.
contents The electronic structure of compensated antiferromagnets (CAF) has drawn attention for its ability to create large responses, reminiscent of ferromagnets and suitable for data storage and readout, despite (nearly) net-zero spontaneous magnetization. Many of the striking experimental signatures predicted for CAF, such as giant thermoelectric Nernst effects, are enhanced when two or more electronic bands are nearly degenerate in vicinity of the Fermi energy. Here, we use thermoelectric and electric transport experiments to study the electronic structure of the layered, chiral metal CoNb3S6 in its all-in-all-out CAF ground state and report near-degeneracies of electron bands at the upper and lower boundaries of the first Brillouin zone. Considering non-symmorphic spin-space group symmetries in the non-relativistic approximation for the ordered phase, these near-degeneracies are approximately protected by a lattice translation combined with spin rotation, and are vestiges of nodal planes enforced by a screw axis symmetry in the paramagnetic state. Hot spots of emergent, or fictitious, magnetic fields are formed at the slightly gapped nodal plane, generating the spontaneous Hall and Nernst effects in this CAF. Taking into account more than six hundred Wannier orbitals, our model quantitatively reproduces the observed spontaneous Nernst effect, emphasizes the role of proximate symmetries in the emergent responses of CAF, and demonstrates the promise of ab-initio search for functional responses in a wide class of materials with reconstructed unit cells due to spin or charge order.
format Preprint
id arxiv_https___arxiv_org_abs_2403_01113
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Gapped nodal planes drive a large topological Nernst effect in a chiral lattice antiferromagnet
Khanh, N. D.
Minami, S.
Hirschmann, M.
Nomoto, T.
Jiang, M. C.
Yamada, R.
Heinsdorf, N.
Yamaguchi, D.
Hayashi, Y.
Okamura, Y.
Watanabe, H.
Guo, G. Y.
Takahashi, Y.
Seki, S.
Taguchi, Y.
Tokura, Y.
Arita, R.
Hirschberger, M.
Materials Science
Strongly Correlated Electrons
The electronic structure of compensated antiferromagnets (CAF) has drawn attention for its ability to create large responses, reminiscent of ferromagnets and suitable for data storage and readout, despite (nearly) net-zero spontaneous magnetization. Many of the striking experimental signatures predicted for CAF, such as giant thermoelectric Nernst effects, are enhanced when two or more electronic bands are nearly degenerate in vicinity of the Fermi energy. Here, we use thermoelectric and electric transport experiments to study the electronic structure of the layered, chiral metal CoNb3S6 in its all-in-all-out CAF ground state and report near-degeneracies of electron bands at the upper and lower boundaries of the first Brillouin zone. Considering non-symmorphic spin-space group symmetries in the non-relativistic approximation for the ordered phase, these near-degeneracies are approximately protected by a lattice translation combined with spin rotation, and are vestiges of nodal planes enforced by a screw axis symmetry in the paramagnetic state. Hot spots of emergent, or fictitious, magnetic fields are formed at the slightly gapped nodal plane, generating the spontaneous Hall and Nernst effects in this CAF. Taking into account more than six hundred Wannier orbitals, our model quantitatively reproduces the observed spontaneous Nernst effect, emphasizes the role of proximate symmetries in the emergent responses of CAF, and demonstrates the promise of ab-initio search for functional responses in a wide class of materials with reconstructed unit cells due to spin or charge order.
title Gapped nodal planes drive a large topological Nernst effect in a chiral lattice antiferromagnet
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2403.01113