Emergent Non-Abelian Gauge Theory in Coupled Spin-Electron Dynamics
Nicolas Lenzing, Alexander I. Lichtenstein, Michael Potthoff

TL;DR
This paper derives a non-abelian gauge theory describing coupled spin-electron dynamics, revealing new geometrical spin torques and nutational motion effects beyond traditional adiabatic models.
Contribution
It introduces a novel non-abelian gauge theoretical framework for spin-electron systems, capturing complex geometrical effects and spin dynamics not accounted for in prior adiabatic theories.
Findings
Non-abelian gauge structure emerges in low-energy spin-electron dynamics.
Gauge-invariant spin-Berry curvature induces additional spin torques.
Numerical results show agreement with full theory beyond adiabatic approximation.
Abstract
A clear separation of the time scales governing the dynamics of "slow" and "fast" degrees of freedom often serves as a prerequisite for the emergence of an independent low-energy theory. Here, we consider (slow) classical spins exchange coupled to a tight-binding system of (fast) conduction electrons. The effective equations of motion are derived under the constraint that the quantum state of the electron system at any instant of time lies in the -dimensional low-energy subspace for the corresponding spin configuration at . The effective low-energy theory unfolds itself straightforwardly and takes the form of a non-abelian gauge theory with the gauge freedom given by the arbitrariness of the basis spanning the instantaneous low-energy sector. The holonomic constraint generates a gauge covariant spin-Berry curvature tensor in the equations of motion for the classical spins. In…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Atomic and Subatomic Physics Research · Quantum and electron transport phenomena
