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Macroscopic time reversal symmetry breaking by staggered spin-momentum interaction

Authors :
Reichlová, Helena
Seeger, Rafael Lopes
González-Hernández, Rafael
Kounta, Ismaila
Schlitz, Richard
Kriegner, Dominik
Ritzinger, Philipp
Lammel, Michaela
Leiviskä, Miina
Petříček, Václav
Doležal, Petr
Schmoranzerová, Eva
Bad'ura, Antonín
Thomas, Andy
Baltz, Vincent
Michez, Lisa
Sinova, Jairo
Goennenwein, Sebastian T. B.
Jungwirth, Tomáš
Šmejkal, Libor
Publication Year :
2020

Abstract

Time-reversal (T) symmetry breaking is a fundamental physics concept underpinning a broad science and technology area, including topological magnets, axion physics, dissipationless Hall currents, or spintronic memories. A best known conventional model of macroscopic T-symmetry breaking is a ferromagnetic order of itinerant Bloch electrons with an isotropic spin interaction in momentum space. Anisotropic electron interactions, on the other hand, have been a domain of correlated quantum phases, such as the T-invariant nematics or unconventional superconductors. Here we report discovery of a broken-T phase of itinerant Bloch electrons with an unconventional anisotropic spin-momentum interaction, whose staggered nature leads to the formation of two ferromagnetic-like valleys in the momentum space with opposite spin splittings. We describe qualitatively the effect by deriving a non-relativistic single-particle Hamiltonian model. Next, we identify the unconventional staggered spin-momentum interaction by first-principles electronic structure calculations in a four-sublattice antiferromagnet Mn5Si3 with a collinear checkerboard magnetic order. We show that the staggered spin-momentum interaction is set by nonrelativistic spin-symmetries which were previously omitted in relativistic physics classifications of spin interactions and topological quasiparticles. Our measurements of a spontaneous Hall effect in epilayers of antiferromagnetic Mn5Si3 with vanishing magnetization are consistent with our theory predictions. Bloch electrons with the unconventional staggered spin interaction, compatible with abundant low atomic-number materials, strong spin-coherence, and collinear antiferromagnetic order open unparalleled possibilities for realizing T-symmetry broken spin and topological quantum phases.<br />Comment: 26 pages, 4 figures

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2012.15651
Document Type :
Working Paper