arXiv · 1710.01834
First-principles and model simulation of all-optical spin reversal
Abstract
All-optical spin switching is a potential trailblazer for information storage and communication at an unprecedented fast rate and free of magnetic fields. However, the current wisdom is largely based on semiempirical models of effective magnetic fields and heat pulses, so it is difficult to provide high-speed design protocols for actual devices. Here, we carry out a massively parallel first-principles and model calculation for thirteen spin systems and magnetic layers, free of any effective field, to establish a simpler and alternative paradigm of laser-induced ultrafast spin reversal and to point out a path to a full-integrated photospintronic device. It is the interplay of the optical selection rule and sublattice spin orderings that underlines seemingly irreconcilable helicity-dependent/independent switchings. Using realistic experimental parameters, we predict that strong ferrimagnets, in particular, Laves phase C15 rare-earth alloys, meet the telecommunication energy requirement of 10 fJ, thus allowing a cost-effective subpicosecond laser to switch spin in the GHz region.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
G. P. Zhang, Z. Babyak, Y. Xue, Y. H. Bai, Thomas F. George. 2017-10-05. First-principles and model simulation of all-optical spin reversal. https://doi.org/10.1103/physrevb.96.134407
Cite the original work for its findings. Save a collection to share your selection of sources.