All-optical spin switching under different spin configurations
G. P. Zhang, Mitsuko Murakami

TL;DR
This paper investigates all-optical spin switching using an atomic spin model, revealing how spin configurations and laser polarization influence spin dynamics in systems from single spins to large ensembles.
Contribution
It introduces a systematic analysis of spin switching mechanisms across different configurations and sizes, emphasizing the role of electron momentum direction and laser polarization effects.
Findings
Electron momentum must align with spin for efficient switching.
Circular polarization affects spin structures differently, with $\sigma^+$ and $\sigma^-$ having distinct impacts.
Spin responses vary with underlying spin configurations and laser polarization.
Abstract
We employ an atomic spin model and present a systematic investigation from a single spin to a large system of over a million spins. To have an efficient spin switching, the electron initial momentum direction must closely follow the spin's orientation, so the orbital angular momentum is transverse to the spin and consequently the spin-orbit torque lies in the same direction as the spin. The module of the spin-orbit torque is , where is the angle between spin {\bf S} and position {\bf r}(momentum { \bf P}) and is the angle between {\bf r} and {\bf P}. These findings are manifested in a much larger system. The spin response depends on underlying spin structures. A linearly polarized laser pulse creates a dip in a uniform inplane-magnetized thin film, but has…
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