Laser-Induced Current Transients in Ultrafast All-Optical Switching of Metallic Spin Valves

Fuente: arXiv
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Main Authors: Lepadatu, Serban, Gija, Mohammed, Dobrynin, Alexey, McNeill, Kevin, Gubbins, Mark, Mercer, Tim, McCann, Steven M., Bissell, Philip
Format: Preprint
Published: 2025
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_version_ 1866908842019782656
author Lepadatu, Serban
Gija, Mohammed
Dobrynin, Alexey
McNeill, Kevin
Gubbins, Mark
Mercer, Tim
McCann, Steven M.
Bissell, Philip
author_facet Lepadatu, Serban
Gija, Mohammed
Dobrynin, Alexey
McNeill, Kevin
Gubbins, Mark
Mercer, Tim
McCann, Steven M.
Bissell, Philip
contents All-optical switching in a ferromagnetic spin valve is studied here using atomistic spin drift-diffusion dynamics, which includes contributions from spin pumping and superdiffusive transport. We find the switching is governed principally by spin-polarized currents due to non-equilibrium hot electrons excited by the laser pulse and re-equilibration currents. In particular, an initial superdiffusive forward flow of electrons, polarized by the free layer, is generated. This drives parallel to antiparallel switching of the free layer through accumulation of minority spins at the reference layer. A diffusive backward flow of electrons, repolarized by the reference layer, follows the initial superdiffusive flow as the charge distribution re-equilibrates. Due to the pulse width-dependent asymmetric amplitudes of the forward and backward transients, the latter can drive antiparallel to parallel switching, and create multi-domain structures at higher laser fluences and longer pulses. The results obtained here are in agreement with experimental observations, providing a framework for self-consistent modelling of all-optical switching in metallic heterostructures.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15247
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Laser-Induced Current Transients in Ultrafast All-Optical Switching of Metallic Spin Valves
Lepadatu, Serban
Gija, Mohammed
Dobrynin, Alexey
McNeill, Kevin
Gubbins, Mark
Mercer, Tim
McCann, Steven M.
Bissell, Philip
Mesoscale and Nanoscale Physics
All-optical switching in a ferromagnetic spin valve is studied here using atomistic spin drift-diffusion dynamics, which includes contributions from spin pumping and superdiffusive transport. We find the switching is governed principally by spin-polarized currents due to non-equilibrium hot electrons excited by the laser pulse and re-equilibration currents. In particular, an initial superdiffusive forward flow of electrons, polarized by the free layer, is generated. This drives parallel to antiparallel switching of the free layer through accumulation of minority spins at the reference layer. A diffusive backward flow of electrons, repolarized by the reference layer, follows the initial superdiffusive flow as the charge distribution re-equilibrates. Due to the pulse width-dependent asymmetric amplitudes of the forward and backward transients, the latter can drive antiparallel to parallel switching, and create multi-domain structures at higher laser fluences and longer pulses. The results obtained here are in agreement with experimental observations, providing a framework for self-consistent modelling of all-optical switching in metallic heterostructures.
title Laser-Induced Current Transients in Ultrafast All-Optical Switching of Metallic Spin Valves
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.15247