Accelerating the laser-induced phase transition in nanostructured FeRh via plasmonic absorption
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| Main Authors: | , , , , , , , |
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| Format: | Preprint |
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2023
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| _version_ | 1866914815135449088 |
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| author | Mattern, Maximilian Pudell, Jan-Etienne Arregi, Jon Ander Zlámal, Jakub Kalousek, Radek Uhlíř, Vojtěch Rössle, Matthias Bargheer, Matias |
| author_facet | Mattern, Maximilian Pudell, Jan-Etienne Arregi, Jon Ander Zlámal, Jakub Kalousek, Radek Uhlíř, Vojtěch Rössle, Matthias Bargheer, Matias |
| contents | By ultrafast x-ray diffraction we show that the laser-induced magnetostructural phase transition in FeRh nanoislands proceeds faster and more complete than in continuous films. We observe an intrinsic 8 ps timescale for nucleation of ferromagnetic (FM) domains in both types of samples. For the continuous film, the substrate-near regions, which are not directly exposed to light, are only slowly transformed to the FM state by domain wall motion following heat transport. In contrast, numerical modeling of the plasmonic absorption in the investigated nanostructure reveals a strong contribution near the FeRh/MgO interface. On average, the absorption is larger and more homogeneous in the nanoislands, enabling the phase transition throughout the entire volume at the intrinsic nucleation timescale. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2309_12683 |
| institution | arXiv |
| publishDate | 2023 |
| record_format | arxiv |
| spellingShingle | Accelerating the laser-induced phase transition in nanostructured FeRh via plasmonic absorption Mattern, Maximilian Pudell, Jan-Etienne Arregi, Jon Ander Zlámal, Jakub Kalousek, Radek Uhlíř, Vojtěch Rössle, Matthias Bargheer, Matias Materials Science By ultrafast x-ray diffraction we show that the laser-induced magnetostructural phase transition in FeRh nanoislands proceeds faster and more complete than in continuous films. We observe an intrinsic 8 ps timescale for nucleation of ferromagnetic (FM) domains in both types of samples. For the continuous film, the substrate-near regions, which are not directly exposed to light, are only slowly transformed to the FM state by domain wall motion following heat transport. In contrast, numerical modeling of the plasmonic absorption in the investigated nanostructure reveals a strong contribution near the FeRh/MgO interface. On average, the absorption is larger and more homogeneous in the nanoislands, enabling the phase transition throughout the entire volume at the intrinsic nucleation timescale. |
| title | Accelerating the laser-induced phase transition in nanostructured FeRh via plasmonic absorption |
| topic | Materials Science |
| url | https://arxiv.org/abs/2309.12683 |