Ultrafast optical excitation of magnons in 2D antiferromagnetic semiconductors via spin torque mediated by unbound electron-hole pairs and excitons: Signatures in magnonic charge pumping
Jalil Varela-Manjarres, Yafei Ren, Branislav K. Nikolic

TL;DR
This paper develops a quantum transport theory explaining how femtosecond laser pulses excite magnons in 2D antiferromagnetic semiconductors via spin torque mediated by electron-hole pairs and excitons, revealing signatures in charge pumping.
Contribution
It introduces a coupled nonequilibrium Green's function and LLG equation framework to describe ultrafast magnon excitation and charge pumping in 2D AF semiconductors, highlighting the role of excitons.
Findings
Femtosecond laser pulses generate spin-polarized photocurrents in 2D AF semiconductors.
Magnons excited by laser pulses influence charge currents and electromagnetic radiation emission.
The theory predicts signatures of magnons and excitons in charge pumping signals.
Abstract
Recent experiments observing how femtosecond laser pulse (fsLP) excites magnons in two-dimensional (2D) antiferromagnetic (AF) semiconductors -- such as CrSBr, NiPS, and MnPS, or their van der Waals heterostructures -- suggest an important role played by excitons. However, microscopic details of such an effect remain obscure, as resonant coupling of magnons, living in the sub-meV energy range, to excitons, living in the \mbox{ eV} range, can hardly be operative. Here, we develop a quantum transport theory of this effect, in which time-dependent nonequilibrium Green's function (TDNEGF) for electrons driven by fsLP is coupled self-consistently to the Landau-Lifshitz-Gilbert (LLG) equation describing classical dynamics of localized magnetic moments (LMMs) residing on magnetic atoms of 2D AF semiconductors. This theory explains how fsLP, of central frequency {\em above} the…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Mechanical and Optical Resonators · Magnetic properties of thin films
