Identifying grain boundary and intragranular pinning centres in Sm2(Co,Fe,Cu,Zr)17 permanent magnets to guide performance optimisation

S Stefan Giron N Nikita Polin E Esmaeil Adabifiroozjaei (Advanced Electron Microscopy Division, Institute of Materials Science, Department of Materials and Geosciences, Technical University of Darmstadt, Peter-Grünberg-Straße 2, 64287 Darmstadt, Germany) Y Yangyiwei Yang F Fernando Maccari A András Kovács (Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich, Germany.) T Trevor P. Almeida D Dominik Ohmer K Kaan Üstüner A Alaukik Saxena M Matthias Katter I Iliya A. Radulov C Christoph Freysoldt R Rafal E. Dunin-Borkowski (Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich, Germany.) M Michael Farle K Karsten Durst H Hongbin Zhang (Institute for Preservation of Chinese Ancient Books, Fudan University Library) L Lambert Alff K Katharina Ollefs B Bai-Xiang Xu O Oliver Gutfleisch L Leopoldo Molina-Luna (Advanced Electron Microscopy Division, Institute of Materials Science, Department of Materials and Geosciences, Technical University of Darmstadt, Peter-Grünberg-Straße 2, 64287 Darmstadt, Germany) B Baptiste Gault K Konstantin P. Skokov

Abstract

Abstract Permanent magnets draw their properties from a complex interplay of chemical composition and phase, each with their associated intrinsic magnetic properties. Gaining an understanding of these interactions is the key to deciphering the origins of a permanent magnets’ magnetic performance and facilitate the engineering of much improved-performing magnets. Here, we use advanced multiscale microscopy and microanalysis on a bulk Sm 2 (Co,Fe,Cu,Zr) 17 pinning-type high-performance magnet with outstanding thermal and chemical stability. Comparison of the microstructure in regions of different composition, we demonstrate that the pinning of magnetic domains, imaged by nanoscale magnetic induction mapping, is controlled by the composition and atomic arrangement of copper. This is confirmed by micromagnetic simulations. Contrary to the belief that grain boundaries are “weak links” in magnetic materials, we demonstrate grain boundaries undergo magnetization reversal at relatively low fields (0.1-0.3 T), but this remains confined to these regions and does not significantly impact the magnet’s coercivity. Our results showcase that it is the optimal microstructure within the grain itself that is crucial for achieving the desired magnetic properties.

Article Details

Volume / Issue Vol. 16, Issue 1
Published December 20, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (24)

S

Stefan Giron

N

Nikita Polin

E

Esmaeil Adabifiroozjaei

Advanced Electron Microscopy Division, Institute of Materials Science, Department of Materials and Geosciences, Technical University of Darmstadt, Peter-Grünberg-Straße 2, 64287 Darmstadt, Germany

Y

Yangyiwei Yang

F

Fernando Maccari

A

András Kovács

Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich, Germany.

T

Trevor P. Almeida

D

Dominik Ohmer

K

Kaan Üstüner

A

Alaukik Saxena

M

Matthias Katter

I

Iliya A. Radulov

C

Christoph Freysoldt

R

Rafal E. Dunin-Borkowski

Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich, Germany.

M

Michael Farle

K

Karsten Durst

H

Hongbin Zhang

Institute for Preservation of Chinese Ancient Books, Fudan University Library

L

Lambert Alff

K

Katharina Ollefs

B

Bai-Xiang Xu

O

Oliver Gutfleisch

L

Leopoldo Molina-Luna

Advanced Electron Microscopy Division, Institute of Materials Science, Department of Materials and Geosciences, Technical University of Darmstadt, Peter-Grünberg-Straße 2, 64287 Darmstadt, Germany

B

Baptiste Gault

K

Konstantin P. Skokov