Dynamics of photo-induced ferromagnetism in oxides with orbital degeneracy
Jonathan B. Curtis, Ankit Disa, Michael Fechner, Andrea Cavalleri,, Prineha Narang

TL;DR
This paper investigates how intense optical pulses can dynamically control and even reverse magnetization in oxides with orbital degeneracy, revealing new pathways for ultrafast magnetic manipulation.
Contribution
It introduces a model for nonequilibrium magnon dynamics coupled with orbital excitations, demonstrating optical control over magnetic order and relaxation processes.
Findings
Optical pulses can accelerate magnetization dynamics.
Blue-detuned pulses can reverse magnon relaxation.
Control over magnetic order via tailored optical excitation.
Abstract
By using intense coherent electromagnetic radiation, it may be possible to manipulate the properties of quantum materials very quickly, or even induce new and potentially useful phases that are absent in equilibrium. For instance, ultrafast control of magnetic dynamics is crucial for a number of proposed spintronic devices and can also shed light on the possible dynamics of correlated phases out of equilibrium. Inspired by recent experiments on spin-orbital ferromagnet YTiO we consider the nonequilibrium dynamics of Heisenberg ferromagnetic insulator with low-lying orbital excitations. We model the dynamics of the magnon excitations in this system following an optical pulse which resonantly excites infrared-active phonon modes. As the phonons ring down they can dynamically couple the orbitals with the low-lying magnons, leading to a dramatically modified effective bath for the…
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Taxonomy
TopicsMagnetic properties of thin films · Physics of Superconductivity and Magnetism · Magnetic and transport properties of perovskites and related materials
