Publication detail
Accelerating the Laser-Induced Phase Transition in Nanostructured FeRh via Plasmonic Absorption
MATTERN, M. PUDELL, J. ARREGI URIBEETXEBARRIA, J. ZLÁMAL, J. KALOUSEK, R. UHLÍŘ, V. RÖSSLE, M. BARGHEER, M.
Original Title
Accelerating the Laser-Induced Phase Transition in Nanostructured FeRh via Plasmonic Absorption
Type
journal article in Web of Science
Language
English
Original Abstract
By ultrafast x-ray diffraction (UXRD), it is shown that the laser-induced magnetostructural phase transition in FeRh nanoislands proceeds faster and more complete than in continuous films. An intrinsic 8 ps timescale is observed for the nucleation of ferromagnetic (FM) domains in the optically excited fraction of both types of samples. For the continuous film, the substrate-near regions are not directly exposed to light and are only slowly transformed to the FM state after heating above the transition temperature via near-equilibrium heat transport. Numerical modeling of the absorption in the investigated nanoislands reveals a strong plasmonic contribution near the FeRh/MgO interface. The larger absorption and the optical excitation of the electrons in nearly the entire volume of the nanoislands enables a rapid phase transition throughout the entire volume at the intrinsic nucleation timescale. Nanostructuring FeRh thin films by solid state dewetting make the laser-induced antiferromagnetic to ferromagnetic phase transition more efficient and speed the switching up to the intrinsic timescale. Ultrafast x-ray diffraction experiments directly measure the structural order parameter averaged over the entire film. Finite element modeling reveals the enhanced plasmonic light absorption near the substrate as the crucial factor. image
Keywords
phase transitions; plasmons; thin films; ultrafast magnetism; ultrafast X-ray diffraction
Authors
MATTERN, M.; PUDELL, J.; ARREGI URIBEETXEBARRIA, J.; ZLÁMAL, J.; KALOUSEK, R.; UHLÍŘ, V.; RÖSSLE, M.; BARGHEER, M.
Released
1. 8. 2024
Publisher
WILEY-V C H VERLAG GMBH
Location
WEINHEIM
ISBN
1616-301X
Periodical
ADVANCED FUNCTIONAL MATERIALS
Year of study
34
Number
32
State
Federal Republic of Germany
Pages count
10
URL
Full text in the Digital Library
BibTex
@article{BUT188690,
author="Maximilian {Mattern} and Jan Etienne {Pudell} and Jon Ander {Arregi Uribeetxebarria} and Jakub {Zlámal} and Radek {Kalousek} and Vojtěch {Uhlíř} and Matti {Rössle} and Matias {Bargheer}",
title="Accelerating the Laser-Induced Phase Transition in Nanostructured FeRh via Plasmonic Absorption",
journal="ADVANCED FUNCTIONAL MATERIALS",
year="2024",
volume="34",
number="32",
pages="10",
doi="10.1002/adfm.202313014",
issn="1616-301X",
url="https://onlinelibrary.wiley.com/doi/10.1002/adfm.202313014"
}