Electromagnetic coupling of spins and pseudospins in bilayer graphene
R. Winkler, U. Z\"ulicke

TL;DR
This paper provides a theoretical analysis of bilayer graphene, revealing symmetric and unconventional couplings of spins and pseudospins to electric and magnetic fields, with implications for understanding matter-field interactions.
Contribution
It introduces a symmetry-based invariant Hamiltonian expansion showing symmetric magneto-electric couplings in bilayer graphene, applicable to similar materials.
Findings
Electric spin splitting is the magneto-electric analogue of Zeeman splitting
Magnetic and electric fields induce symmetric thermodynamic responses
Couplings are consistent with fundamental symmetries like time reversal
Abstract
We present a detailed theoretical study of bilayer-graphene's electronic properties in the presence of electric and magnetic fields. Using group-theoretical methods, we derive an invariant expansion of the Hamiltonian for electron states near the K point of the Brillouin zone. In contrast to known materials, including single-layer graphene, any possible coupling of physical quantities to components of the external electric (magnetic) field has a counterpart where the analogous component of the magnetic (electric) field couples to exactly the same combination of quantities. For example, a purely electric spin splitting appears as the magneto-electric analogue of the familiar magnetic Zeeman spin splitting. The measurable thermodynamic response induced by magnetic and electric fields is thus completely symmetric. The Pauli magnetization induced by a magnetic field takes exactly the same…
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Taxonomy
TopicsGraphene research and applications · Quantum optics and atomic interactions · Carbon Nanotubes in Composites
