Manipulating Femtosecond Spin--Orbit Torques with Laser Pulse Sequences to Control Magnetic Memory States and Ringing
P. C. Lingos, J. Wang, I. E. Perakis

TL;DR
This paper demonstrates femtosecond laser pulse sequences can coherently manipulate spin--orbit torques to control magnetic memory states and ringing in ferromagnetic materials, enabling precise magnetic switching.
Contribution
It introduces a novel scheme for ultrafast control of magnetic states using non-adiabatic optical manipulation of spin--orbit torques without circularly polarized light.
Findings
Laser pulse sequences can enhance or suppress magnetic switching.
Photoinduced magnetization canting shows hysteresis and state dependence.
Controlled four-state magnetic switching is achievable.
Abstract
Femtosecond (fs) coherent control of collective order parameters is important for non--equilibrium phase dynamics in correlated materials. Here we propose a possible scheme for fs control of a ferromagnetic order parameter based on non--adiabatic optical manipulation of electron--hole (--) photoexcitations between spin--orbit--coupled bands that are exchange--split by magnetic interaction with local spins. We photoexcite fs carrier spin--pulses with controllable direction and time profile without using circularly--polarized light, via time--reversal symmetry--breaking by non--perturbative interplay between spin--orbit and magnetic exchange coupling of coherent photocarriers. We manipulate photoexcited {\em fs spin--orbit torques} to control complex switching pathways of the magnetization between multiple magnetic memory states. We calculate the photoinduced fs magnetic anisotropy…
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