Adiabatic and Nonadiabatic Spin-transfer Torques in Antiferromagnets
Junji Fujimoto

TL;DR
This paper develops a microscopic quantum field theory for spin-transfer torques in antiferromagnets, revealing new insights into their origin and challenging conventional explanations.
Contribution
It provides the first analytic derivation of spin-transfer torques in antiferromagnets, highlighting the role of spin-momentum locking and gauge fields without spin-orbit coupling.
Findings
Nonadiabatic torque has the same form as adiabatic torque.
Spin-momentum locking arises without spin-orbit coupling.
Phenomenological models are confirmed and extended.
Abstract
Electron transport in magnetic orders and the magnetic orders dynamics have a mutual dependence, which provides the key mechanisms in spin-dependent phenomena. Recently, antiferromagnetic orders are focused on as the magnetic order, where current-induced spin-transfer torques, a typical effect of electron transport on the magnetic order, have been debatable mainly because of the lack of an analytic derivation based on quantum field theory. Here, we construct the microscopic theory of spin-transfer torques on the slowly-varying staggered magnetization in antiferromagnets with weak canting. In our theory, the electron is captured by bonding/antibonding states, each of which is the eigenstate of the system, doubly degenerates, and spatially spreads to sublattices because of electron hopping. The spin of the eigenstates depends on the momentum in general, and a nontrivial spin-momentum…
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