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Multifunctional antiperovskites driven by strong magnetostructural coupling

Singh, Harish K. ; Samathrakis, Ilias ; Fortunato, Nuno M. ; Zemen, Jan ; Shen, Chen ; Gutfleisch, Oliver ; Zhang, Hongbin (2024)
Multifunctional antiperovskites driven by strong magnetostructural coupling.
In: npj Computational Materials, 2021, 7 (1)
doi: 10.26083/tuprints-00023606
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Item Type: Article
Type of entry: Secondary publication
Title: Multifunctional antiperovskites driven by strong magnetostructural coupling
Language: English
Date: 30 September 2024
Place of Publication: Darmstadt
Year of primary publication: 30 June 2021
Place of primary publication: London
Publisher: Springer Nature
Journal or Publication Title: npj Computational Materials
Volume of the journal: 7
Issue Number: 1
Collation: 9 Seiten
DOI: 10.26083/tuprints-00023606
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

Based on density functional theory calculations, we elucidated the origin of multifunctional properties for cubic antiperovskites with noncollinear magnetic ground states, which can be attributed to strong isotropic and anisotropic magnetostructural coupling. Of 54 stable magnetic antiperovskites M3XZ (M = Cr, Mn, Fe, Co, and Ni; X = selected elements from Li to Bi except for noble gases and 4f rare-earth metals; and Z = C and N), 14 are found to exhibit the Γ4g/Γ5g (i.e., characterized by irreducible representations) antiferromagnetic magnetic configurations driven by frustrated exchange coupling and strong magnetocrystalline anisotropy. Using the magnetic deformation as an effective proxy, the isotropic magnetostructural coupling is characterized, and it is observed that the paramagnetic state is critical to understand the experimentally observed negative thermal expansion and to predict the magnetocaloric performance. Moreover, the piezomagnetic and piezospintronic effects induced by biaxial strain are investigated. It is revealed that there is not a strong correlation between the induced magnetization and anomalous Hall conductivities by the imposed strain. Interestingly, the anomalous Hall/Nernst conductivities can be significantly tailored by the applied strain due to the fine-tuning of the Weyl points energies, leading to promising spintronic applications.

Uncontrolled Keywords: Electronic structure, Information storage, Magnetic properties and materials, Solid-state chemistry, Spintronics
Identification Number: Artikel-ID: 98
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-236060
Classification DDC: 500 Science and mathematics > 530 Physics
600 Technology, medicine, applied sciences > 660 Chemical engineering
Divisions: 11 Department of Materials and Earth Sciences > Material Science > Functional Materials
11 Department of Materials and Earth Sciences > Material Science > Theory of Magnetic Materials
Date Deposited: 30 Sep 2024 08:20
Last Modified: 31 Oct 2024 06:42
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/23606
PPN: 522845878
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