Phononic Switching of Magnetization by the Ultrafast Barnett Effect

Fuente: arXiv
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Main Authors: Davies, C. S., Fennema, F. G. N., Tsukamoto, A., Razdolski, I., Kimel, A. V., Kirilyuk, A.
Format: Preprint
Published: 2023
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author Davies, C. S.
Fennema, F. G. N.
Tsukamoto, A.
Razdolski, I.
Kimel, A. V.
Kirilyuk, A.
author_facet Davies, C. S.
Fennema, F. G. N.
Tsukamoto, A.
Razdolski, I.
Kimel, A. V.
Kirilyuk, A.
contents The Barnett effect, discovered more than a century ago, describes how an inertial body with otherwise zero net magnetic moment acquires spontaneous magnetization when mechanically spinning. Breakthrough experiments have recently shown that an ultrashort laser pulse destroys the magnetization of an ordered ferromagnet within hundreds of femtoseconds, with the spins losing angular momentum to circularly-polarized optical phonons as part of the ultrafast Einstein-de Haas effect. However, the prospect of using such high-frequency vibrations of the lattice to reciprocally switch magnetization in a nearby magnetic medium has not yet been experimentally explored. Here we show that the spontaneous magnetization temporarily gained via the ultrafast Barnett effect, through the resonant excitation of circularly-polarized optical phonons in paramagnetic substrates, can be used to permanently reverse the magnetic state of the substrate-mounted heterostructure. With the handedness of the phonons steering the direction of magnetic switching, the ultrafast Barnett effect offers a selective and potentially universal method for exercising ultrafast non-local control over magnetic order.
format Preprint
id arxiv_https___arxiv_org_abs_2305_11551
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Phononic Switching of Magnetization by the Ultrafast Barnett Effect
Davies, C. S.
Fennema, F. G. N.
Tsukamoto, A.
Razdolski, I.
Kimel, A. V.
Kirilyuk, A.
Mesoscale and Nanoscale Physics
The Barnett effect, discovered more than a century ago, describes how an inertial body with otherwise zero net magnetic moment acquires spontaneous magnetization when mechanically spinning. Breakthrough experiments have recently shown that an ultrashort laser pulse destroys the magnetization of an ordered ferromagnet within hundreds of femtoseconds, with the spins losing angular momentum to circularly-polarized optical phonons as part of the ultrafast Einstein-de Haas effect. However, the prospect of using such high-frequency vibrations of the lattice to reciprocally switch magnetization in a nearby magnetic medium has not yet been experimentally explored. Here we show that the spontaneous magnetization temporarily gained via the ultrafast Barnett effect, through the resonant excitation of circularly-polarized optical phonons in paramagnetic substrates, can be used to permanently reverse the magnetic state of the substrate-mounted heterostructure. With the handedness of the phonons steering the direction of magnetic switching, the ultrafast Barnett effect offers a selective and potentially universal method for exercising ultrafast non-local control over magnetic order.
title Phononic Switching of Magnetization by the Ultrafast Barnett Effect
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2305.11551