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Magnetostriction of Fe-rich FeSiB(P)NbCu amorphous and nanocrystalline soft-magnetic alloys.

Authors :
Murugaiyan, Premkumar
Mitra, Amitava
Patro, Arun K.
Roy, Rajat K.
Panda, Ashis K.
Source :
Journal of Alloys & Compounds. Oct2023, Vol. 960, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

The compositional effect of magneto-elastic and magnetostriction properties of Fe-rich Fe 81 B 15−x P x Si 2 Nb 1 Cu 1 (ii) Fe 82 B 14−x P x Si 2 Nb 1 Cu 1 and (iii) Fe 83 B 13−x P x Si 2 Nb 1 Cu 1 (x = 0, 4, 8) amorphous and annealed nanocrystalline alloy ribbons were investigated. The present study adds knowledge to the limited magnetostriction literature available for Fe-rich nanocrystalline alloys by systematically varying the Fe and P content. A combination of Becker-Kersten and small angle magnetization rotation (SAMR) techniques has been employed for the magnetostriction (λs) evaluation. Both the as-quenched and nanocrystalline ribbons exhibit large positive magnetostriction and show strong compositional dependence to the P content. In the as-quenched condition, 4 at% P addition shows maximum magneto-elastic response and magnetostriction constant, with Fe 81 B 11 P 4 Si 2 Nb 1 Cu 1 alloy exhibiting a maximum of + 52 ppm and P-free Fe 83 B 13 Si 2 Nb 1 Cu 1 alloy exhibiting a minimum of + 27 ppm. In the nanocrystalline state, a slight reduction of magnetostriction is seen for all alloys, with a maximum of + 32 ppm (4 at% P) and a minimum of + 22 ppm (P-free) in Fe83 at% alloys. The unusual large magnetostriction of optimally annealed samples is attributed to the relatively low crystal volume fraction (30–45%) of nanocrystalline ribbons. The lowest magnetostriction of Fe 83 B 13 Si 2 Nb 1 Cu 1 alloy in both as-quenched and annealed state is explained based on ribbon structural heterogeneity consisting of crystal nuclei and textured α-Fe surface crystallization. The study reveals a contradictory response of magneto-crystal anisotropy (grain size reduction) and magneto-elastic anisotropy to the P addition and ribbon structural heterogeneity. The study discusses the implications of the large magneto-elastic anisotropy associated with Fe-rich nanocrystalline ribbons and the way forward for improving their magnetic softness. [Display omitted] • Compositional effects of Fe and P addition on magnetostriction of Fe-rich nanocrystalline alloys. • The P addition (∼ 4–8 at%) increases the magnetostriction constant in Fe-rich alloys (81–83 at%). • The ribbons with surface and matrix structural heterogeneity exhibit low magnetostriction. • Large magnetostriction of nanocrystalline alloys due to low crystal volume fraction. • P content and structural heterogeneity show opposing effects towards magneto-crystal and magneto-elastic anisotropy. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09258388
Volume :
960
Database :
Academic Search Index
Journal :
Journal of Alloys & Compounds
Publication Type :
Academic Journal
Accession number :
164857210
Full Text :
https://doi.org/10.1016/j.jallcom.2023.170760