Detail publikačního výsledku

Spatially confined magnetic shape-memory Heuslers: Implications for nanoscale devices

TAKHSHA GHAHFAROKHI, M.; HORKÝ, M.; NASI, L.; KOSOGOR, A.; TREVISI, G.; CASOLI, F.; ARREGI URIBEETXEBARRIA, J.; BRESCIA, R.; UHLÍŘ, V.; ALBERTINI, F.

Originální název

Spatially confined magnetic shape-memory Heuslers: Implications for nanoscale devices

Anglický název

Spatially confined magnetic shape-memory Heuslers: Implications for nanoscale devices

Druh

Článek WoS

Originální abstrakt

Magnetic shape-memory (MSM) Heuslers are among the most promising materials for thermo-magneto-mechanical applications. However, the knowledge about the martensitic transformation (which is the basis of the multifunctionality in these materials) as a function of size reduction in the submicron scale is still very limited. Here, we aim to bridge this knowledge gap by investigating the behavior of these materials upon nanoscale confinement. We customize a top-down approach by patterning arrays of submicron epitaxial Ni-Mn-Ga structures with lateral sizes down to similar to 70 nm, using a Cr hard mask on MgO(001) substrate. The structures include straight stripes, radial stripes, squares and triangles. The martensitic transformation temperature, sharpness, thermal hysteresis and magnetic characteristics of the material are investigated upon spatial confinement. Transmission electron microscopy techniques including Geometric Phase Analysis (GPA) algorithm, and quantitative theoretical analysis of stress help us to evaluate the martensitic transformation of Ni-Mn-Ga starting from continuous films and down to sub-micron patterns. We show that the size-dependent internal stress relaxation plays a primary role in broadening the martensitic transformation of the material, reducing thermal hysteresis, and pushing the transformation toward higher temperatures in the sub-micron structures. These findings highlight the importance of stress considerations upon incorporation of MSM Heusler materials into nanoscale functional devices.

Anglický abstrakt

Magnetic shape-memory (MSM) Heuslers are among the most promising materials for thermo-magneto-mechanical applications. However, the knowledge about the martensitic transformation (which is the basis of the multifunctionality in these materials) as a function of size reduction in the submicron scale is still very limited. Here, we aim to bridge this knowledge gap by investigating the behavior of these materials upon nanoscale confinement. We customize a top-down approach by patterning arrays of submicron epitaxial Ni-Mn-Ga structures with lateral sizes down to similar to 70 nm, using a Cr hard mask on MgO(001) substrate. The structures include straight stripes, radial stripes, squares and triangles. The martensitic transformation temperature, sharpness, thermal hysteresis and magnetic characteristics of the material are investigated upon spatial confinement. Transmission electron microscopy techniques including Geometric Phase Analysis (GPA) algorithm, and quantitative theoretical analysis of stress help us to evaluate the martensitic transformation of Ni-Mn-Ga starting from continuous films and down to sub-micron patterns. We show that the size-dependent internal stress relaxation plays a primary role in broadening the martensitic transformation of the material, reducing thermal hysteresis, and pushing the transformation toward higher temperatures in the sub-micron structures. These findings highlight the importance of stress considerations upon incorporation of MSM Heusler materials into nanoscale functional devices.

Klíčová slova

Magnetic shape memory alloys; Heusler alloys; Martensitic phase transformation; Lithography; Nanofabrication

Klíčová slova v angličtině

Magnetic shape memory alloys; Heusler alloys; Martensitic phase transformation; Lithography; Nanofabrication

Autoři

TAKHSHA GHAHFAROKHI, M.; HORKÝ, M.; NASI, L.; KOSOGOR, A.; TREVISI, G.; CASOLI, F.; ARREGI URIBEETXEBARRIA, J.; BRESCIA, R.; UHLÍŘ, V.; ALBERTINI, F.

Vydáno

01.01.2025

Nakladatel

Elsevier

Místo

OXFORD

ISSN

1873-2453

Periodikum

ACTA MATERIALIA

Svazek

284

Číslo

1

Stát

Spojené státy americké

Strany od

1

Strany do

11

Strany počet

11

URL

Plný text v Digitální knihovně

BibTex

@article{BUT197793,
  author="Milad {Takhsha Ghahfarokhi} and Michal {Horký} and Lucia {Nasi} and Anna {Kosogor} and Giovanna {Trevisi} and Francesca {Casoli} and Jon Ander {Arregi Uribeetxebarria} and Rosaria {Brescia} and Vojtěch {Uhlíř} and Franca {Albertini}",
  title="Spatially confined magnetic shape-memory Heuslers: Implications for nanoscale devices",
  journal="ACTA MATERIALIA",
  year="2025",
  volume="284",
  number="1",
  pages="1--11",
  doi="10.1016/j.actamat.2024.120579",
  issn="1359-6454",
  url="https://www.sciencedirect.com/science/article/pii/S1359645424009273"
}

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