Rare-earth-free noncollinear metallic ferrimagnets Mn4-xZxN with compensation at room temperature

File Type:
PDFItem Type:
Journal ArticleDate:
2022Access:
openAccessCitation:
Rui Zhang, Yangkun He, Daniel Fruchart, J.M.D. Coey, Zsolt Gercsi, Rare-earth-free noncollinear metallic ferrimagnets Mn4-xZxN with compensation at room temperature, ACTA MATERIALIA, 2022, 118021-1 - 118021-9Download Item:
Abstract:
Compensated ferrimagnets show no net magnetization like antiferromagnets, but their transport and magneto-optic properties resemble those of ferromagnets, thereby creating opportunities for applications in high-frequency spintronics and low energy loss communications. Here we study the modification of the noncollinear triangular ferrimagnetic spin structure of Mn4N by a variety of metallic substitutions Z (Z = Cu — Ge and Ag — Sn) to achieve compensation at room temperature. The noncollinear frustrated 2.35µB moments of Mn on 3c sites of the (111) kagome planes tilt about 20° out-of-plane in Mn4N and are easily influenced by the substitutions on 1a sites, leading to an efficiency of compensation in Mn4-xZxN that increases gradually from group 11 (Cu, Ag) to group 14 (Ge, Sn) with increasing number of valence electrons. Elements from the 5th period are more efficient for compensation than those from the 4th period due to lattice expansion. The manganese site moments analyzed by constrained density functional theory are determined by Z, orbital hybridization, charge transfer and the tilt angle. The Ga compound with compensation at room temperature for x ≈ 0.26 is recommended for high-frequency spintronic applications.
Sponsor
Grant Number
Science Foundation Ireland (SFI)
ZEMS (16/IA/4534)
Science Foundation Ireland (SFI)
MANIAC (17/NSFC/5294)
Author's Homepage:
http://people.tcd.ie/venkatemhttp://people.tcd.ie/jcoey
Description:
PUBLISHEDhttps://doi.org/10.1016/j.actamat.2022.118021
Author: Venkatesan, Munuswamy; Coey, John
Type of material:
Journal ArticleCollections
Series/Report no:
ACTA MATERIALIAAvailability:
Full text availableKeywords:
Metallic perovskites, Noncollinear magnetic structure, Kagome lattice, Ferrimagnetism, Compensation temperature, Mn4NSubject (TCD):
Applied physics , Condensed matter, electronic, magnetic and superconductive properties , Magnetism and spin electronics , NanotechnologyDOI:
https://doi.org/10.1016/j.actamat.2022.118021Source URI:
https://www.sciencedirect.com/science/article/pii/S1359645422004025ISSN:
1359-6454Metadata
Show full item recordLicences: