Boltzmann transport theory of magnon-exciton drag
Zakhar A. Iakovlev, Akashdeep Kamra, Mikhail M. Glazov

TL;DR
This paper develops a microscopic theory of magnon-exciton drag in CrSBr, showing how magnons can efficiently influence exciton transport, with potential applications in magnetic excitonic devices.
Contribution
It introduces a detailed exciton-magnon coupling model and evaluates the scattering processes, explaining anomalous exciton transport observed in CrSBr.
Findings
Magnons can significantly enhance exciton propagation beyond intrinsic diffusion.
Exciton-magnon scattering time is sub-ps and decreases with magnon population.
Magnon-exciton drag can produce nearly isotropic and large exciton transport.
Abstract
We develop a microscopic theory of magnon-exciton drag effect in a bilayer van der Waals antiferromagnetic semiconductor CrSBr. Effective exciton-magnon coupling arises from an orbital mechanism: Magnons tilt the layer magnetizations, enabling charge carrier tunneling that mixes intra- and interlayer excitons and thereby modulate the exciton energy. We derive the effective Hamiltonian of exciton-magnon coupling, based on our calculation of the magnon spectrum taking into account short-range exchange interaction between Cr-ion spins, single-ion anisotropy, and long-range dipole-dipole interactions. The latter produces a negative group velocity of magnons at small wavevectors. We show that despite rather small renormalization of exciton's energy and effective mass by the exciton-magnon interaction, the three key two-magnon processes: exciton-magnon scattering, two-magnon absorption by…
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Taxonomy
Topics2D Materials and Applications · Heusler alloys: electronic and magnetic properties · Chemical and Physical Properties of Materials
