Please use this identifier to cite or link to this item: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/10784
Title: Disproportionate influence of site disorder on the evolution of magnetic phases in the anti-Heusler alloy Al2⁢MnFe
Authors: Bhowmik, Soumya
Pakhira, Santanu
KUNDU, ASHIS
Reddy, Raghavendra, V.
KABIR, MUKUL
Mazumdar, Chandan
Dept. of Physics
Keywords: Anomalous Hall effect
Magnetic phase transitions
Magnetism
Magnetotransport
Ferromagnets
Heusler alloy
Polycrystalline materials
Spin glasses
Arc discharge
First-principles calculations
Magnetic techniques
Mössbauer spectroscopy
Specific heat measurements
Transport techniques
X-ray powder diffraction
2026-MAR-WEEK1
TOC-MAR-2026
2026
Issue Date: Jan-2026
Publisher: American Physical Society
Citation: Physical Review B, 113, 014429.
Abstract: Anti-Heusler alloys, being a new addition to the Heusler alloys family, exhibit atomic disorders, and almost all of them are reported as a re-entrant spin-glass system. Although such spin-glass feature is generally attributed to the inherent atomic disorder, a comprehensive and extensive investigation on the individual roles of different types of disorders in magnetic interactions remains lacking for any of the reported anti-Heusler systems. As an illustrative case, we have carried out an in-depth experimental as well as theoretical investigation of structural, magnetic, and transport properties of a polycrystalline anti-Heusler alloy, Al2⁢MnFe. While the major atomic disorder is found to be among Fe and Mn atoms, which are randomly distributed among the two octahedral sites, 4⁢𝑎 and 4⁢𝑏 (B2-type disorder), a relatively small fraction (∼12%) of Mn atoms also replace Al atoms at the tetrahedral 8⁢𝑐 site. Magnetically, the system undergoes two transitions: a paramagnetic to a ferromagnetic transition at 𝑇C∼113K, followed by a spin-glass phase transition below 𝑇f∼20K. Here, the magnetic moment is primarily confined to Mn atoms. Very interestingly, our theoretical analysis reveals that the ferromagnetic spin arrangement remains rather robust in spite of the 50% disorder of moment-carrying Mn atoms between the two octahedral sites, but a much smaller (∼12%) cross-distribution of Mn atoms between octahedral and tetrahedral sites are sufficient to impose a reentrant spin-glass state at low temperature. Our analysis brings forth the importance of understanding the role of individual types of swap disorder on magnetic properties in the anti-Heusler family of materials.
URI: https://doi.org/10.1103/463q-ph2y
http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/10784
ISSN: 2469-9969
2469-9950
Appears in Collections:JOURNAL ARTICLES

Files in This Item:
There are no files associated with this item.


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.