Skyrmion lattice structural transition in MnSi
Author(s) -
Taro Nakajima,
Hiroshi Ôike,
Akiko Kikkawa,
Elliot P. Gilbert,
Norman Booth,
Kazuhisa Kakurai,
Y. Taguchi,
Yoshinori Tokura,
Fumitaka Kagawa,
T. Arima
Publication year - 2017
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.1602562
Subject(s) - skyrmion , condensed matter physics , lattice (music) , square lattice , magnet , hexagonal lattice , physics , topology (electrical circuits) , quantum mechanics , mathematics , combinatorics , acoustics , antiferromagnetism , ising model
Magnetic skyrmions exhibit particle-like properties owing to the topology of their swirling spin texture, providing opportunities to study crystallization of topological particles. However, they mostly end up with a triangular lattice, and thus, the packing degree of freedom in the skyrmion particles has been overlooked so far. We report a structural transition of the skyrmion lattice in MnSi. By use of small-angle neutron scattering, we explore a metastable skyrmion state spreading over a wide temperature and magnetic field region, after thermal quenching. The quenched skyrmions undergo a triangular-to-square lattice transition with decreasing magnetic field at low temperatures. Our study suggests that various skyrmion lattices can emerge at low temperatures, where the skyrmions exhibit distinct topological nature and high sensitivity to the local magnetic anisotropy arising from the underlying chemical lattice.
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