Switching of an antiferromagnet controlled by spin canting in a laser-induced hidden phase
arXiv:2504.12929 · doi:10.1103/bxnn-zckm
Abstract
During laser-induced phase transitions, fast transformations of electronic, atomic, and spin configurations often involve emergence of hidden and metastable phases. Being inaccessible under any other stimuli, such phases are indispensable for unveiling mechanisms and controlling the transitions. We experimentally explore spin kinetics during ultrafast first-order 90 spin-reorientation (SR) transition in a canted antiferromagnet FeBO, and reveal that the transition is controlled by the canting between the magnetic sublattices. Laser-induced perturbation of the Dzyaloshinskii-Moriya interaction results in a change of the intersublattice canting within first picoseconds, bringing FeBO to a hidden phase. Once this phase emerges, laser-induced heating activates precessional 90 spin switching. Combination of the spin canting and heating controls the final spin configuration comprising coexisting initial and switched phases. Extended phase coexistence range is in a striking contrast to the narrow SR transition in FeBO induced by conventional heating.
9 pages, 6 figures, 1 supplementary materials file
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