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Slow equilibrium relaxation in a chiral magnet mediated by topological defects

Abstract:
We performed a pump-probe experiment on the chiral magnet Cu_{2}OSeO_{3} to study the relaxation dynamics of its noncollinear magnetic orders, employing a millisecond magnetic field pulse as the pump and resonant elastic x-ray scattering as the probe. Our findings reveal that the system requires ∼0.2  s to stabilize after the perturbation applied to both the conical and skyrmion lattice phase, which is significantly slower than the typical nanosecond timescale observed in micromagnetics. This prolonged relaxation is attributed to the formation and slow dissipation of local topological defects, such as emergent monopoles. By unveiling the experimental lifetime of these emergent singularities in a noncollinear magnetic system, our study highlights a universal relaxation mechanism in solitonic textures within the slow dynamics regime, offering new insights into topological physics and advanced information storage solutions.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1103/physrevlett.133.166707

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Funder identifier:
https://ror.org/01h0zpd94


Publisher:
American Physical Society
Journal:
Physical Review Letters More from this journal
Volume:
133
Issue:
16
Article number:
166707
Place of publication:
United States
Publication date:
2024-10-18
Acceptance date:
2024-09-18
DOI:
EISSN:
1079-7114
ISSN:
0031-9007
Pmid:
39485987


Language:
English
Pubs id:
2042062
Local pid:
pubs:2042062
Deposit date:
2024-11-05

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