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Laser-generated gigahertz surface acoustic waves with tunable amplitude during the magnetostructural phase transition in Fe-Rh thin films
ID Mogunov, Ia. A. (Author), ID Klokov, A. Yu. (Author), ID Frolov, N. Yu. (Author), ID Protasov, Andrey (Author), ID Zhezlyaev, Gleb (Author), ID Devyaterikov, Denis (Author), ID Gimaev, Radel (Author), ID Zverev, Vladimir I. (Author), ID Kalashnikova, A.M. (Author)

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Abstract
Laser-generated surface acoustic waves (SAWs) facilitate efficient information processing in modern spintronics and magnonics. The ability to tune the SAW parameters such as the amplitude is crucial to achieve acoustic control over magnonic properties. Such tunability can be achieved in phase-changing magnetic materials that accommodate both spin waves and SAWs. A promising material is the Fe-Rh alloy, a metallic antiferromagnet at room temperature that undergoes a phase transition to the ferromagnetic state accompanied by a crystal lattice expansion at 370 K. This transition can also be induced by femtosecond laser pulses. In this paper, we use the phase transition in a 60-nm Fe▫$_{49}$▫Rh▫$_{51}$▫ film to optically generate pulses of Gigahertz quasi-Rayleigh SAWs. We detect them via the photoelastic effect and show that the lattice transformation during the phase transition is a dominant strain-generation mechanism for above-threshold excitation. The weight of this contribution rises as the sample is heated closer to the antiferromagnetic-ferromagnetic transition temperature and “switches off” when heated above it, allowing for control of the SAW amplitude. A model based on thermodynamic parameters of Fe▫$_{49}$▫Rh▫$_{51}$▫ shows that the lattice transformation occurring within 95 ps effectively contributes to SAW generation happening on a comparable timescale, while nonequilibrium fast kinetics of the phase transition does not.

Language:English
Keywords:Fe-Rh thin films, magnetostructural phase transition, surface acoustic waves, spintronics, magnonics
Work type:Article
Typology:1.01 - Original Scientific Article
Organization:FS - Faculty of Mechanical Engineering
Publication status:Published
Publication version:Author Accepted Manuscript
Year:2026
Number of pages:12 str.
Numbering:Vol. 25, art. 054062
PID:20.500.12556/RUL-185679 This link opens in a new window
UDC:537.622:621.318.1
ISSN on article:2331-7019
DOI:10.1103/fgq4-ff7g This link opens in a new window
COBISS.SI-ID:287779075 This link opens in a new window
Publication date in RUL:17.08.2026
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Downloads:32
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Record is a part of a journal

Title:Physical review applied
Shortened title:Phys. rev. appl.
Publisher:American Physical Society
ISSN:2331-7019
COBISS.SI-ID:525838617 This link opens in a new window

Secondary language

Language:Slovenian
Keywords:Fe-Rh tanke plasti, magnetostrukturni fazni prehodi, površinski akustični valovi, spintronika, magnonika

Projects

Funder:Other - Other funder or multiple funders
Project number:24-72-00111
Name:Russian Science Foundation Grant

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