Spin wavepackets in the Kagome ferromagnet Fe<sub>3</sub>Sn<sub>2</sub>: propagation and precursors
ORAL
Abstract
The propagation of spin waves in magnetically ordered systems has emerged as a potential means to shuttle quantum information over large distances. Conventionally, the arrival time of a spin wavepacket at a distance, d, is assumed to be determined by its group velocity, vg. He we report time-resolved optical measurements of wavepacket propagation in the Kagome ferromagnet Fe3Sn2 that demonstrate the arrival of spin information at times significantly less than d/vg. We show that this spin wave "precursor" originates from the interaction of light with the unusual spectrum of magnetostatic modes in Fe3Sn2. Related effects may have far-reaching consequences toward realizing long-range, ultrafast spin wave transport in both ferromagnetic and antiferromagnetic systems.
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Presenters
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Changmin Lee
Lawrence Berkeley National Laboratory
Authors
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Changmin Lee
Lawrence Berkeley National Laboratory
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Yue Sun
University of California, Berkeley
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Linda Ye
Stanford University
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Sumedh Rathi
University of California, Berkeley
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Joseph G Checkelsky
Massachusetts Institute of Technology MIT
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Joseph W Orenstein
UC Berkeley, University of California, Berkeley and Lawrence Berkeley National Laboratory