Communities & Collections
Researchers & Labs
Titles
DGIST
LIBRARY
DGIST R&D
Detail View
Department of Physics and Chemistry
Spin Nanotech Laboratory
1. Journal Articles
Magnetoelasticity-driven phase inversion of ultrafast spin precession in NixFe100-x thin films
Shin, Yooleemi
;
Yoon, Seongsoo
;
Hong, Jung-Il
;
Kim, Ji-Wan
Department of Physics and Chemistry
Spin Nanotech Laboratory
1. Journal Articles
Citations
WEB OF SCIENCE
Citations
SCOPUS
Metadata Downloads
XML
Excel
Title
Magnetoelasticity-driven phase inversion of ultrafast spin precession in NixFe100-x thin films
Issued Date
2023-09
Citation
Shin, Yooleemi. (2023-09). Magnetoelasticity-driven phase inversion of ultrafast spin precession in NixFe100-x thin films. Journal of Science: Advanced Materials and Devices, 8(3). doi: 10.1016/j.jsamd.2023.100568
Type
Article
Author Keywords
Magnetoelasticity
;
Pump-probe magneto-optics
;
Quasi-static strain
;
Ultrafast magnetoacoustics
Keywords
GYROMAGNETIC RATIOS
;
NICKEL
;
MAGNETOSTRICTION
;
MAGNETIZATION
;
DYNAMICS
;
NIFE
ISSN
2468-2284
Abstract
We present strong evidence for the deterministic role of magnetoelasticity in ultrafast spin dynamics of ferromagnetic NixFe100-x alloy films. Without a change in the crystal structure, we observed sudden π-phase inversion of the spin precession in the range of x = 88.5–98.2. In addition, it was found that the phase continuously changed and reversed its sign by varying the pump fluence. These cannot be explained simply by the temperature dependence of magnetocrystalline, demagnetizing, and Zeeman fields which have been conventionally considered so far in describing the spin dynamics. Through the temperature- and composition-dependent simulations adding the magnetoelastic field generated from the lattice thermal strain, we revealed that the conventional and magnetoelastic fields were competing around x = 95.8, where the spin dynamics showed the largest phase shift. For analytic understanding, we further show that the temperature-dependent interplay of the Curie temperature, saturation magnetization, and magnetostriction, which are demonstrated to be the most important macroscopic parameters, determines the ultrafast spin dynamics. Our extensive study emphasizes that magnetoelasticity is the key ingredient for fully understanding the driving mechanism of ultrafast spin dynamics. © 2023 Vietnam National University, Hanoi
URI
http://hdl.handle.net/20.500.11750/47511
DOI
10.1016/j.jsamd.2023.100568
Publisher
Elsevier B.V.
Show Full Item Record
File Downloads
001024516100001.pdf
공유
공유하기
Related Researcher
Hong, Jung-Il
홍정일
Department of Physics and Chemistry
read more
Total Views & Downloads