Zero thermal expansion permanent magnet: an innovative exploration in permanent magnet research

Abstract

Zero thermal expansion (ZTE) materials offer unparalleled dimensional stability, thermal stress resistance, and thermal shock resilience, making them indispensable in precision engineering and demanding industrial applications. Precise thermal expansion tuning was achieved using LaFe 11.2-x Co x Si 1.8 (x = 1.0-1.3) negative thermal expansion compensators, where 20 wt% LaFe 9.9 Co 1.3 Si 1.8 incorporation yielded near-ZTE characteristic exhibiting low thermal expansion coefficients (2.14 vs. 0.35×10 - 6 K -1 , parallel to pressing direction vs. perpendicular) within 308-348 K. The dual-component strategy (10 wt% LaFe 10.2 Co 1.0 Si 1.8 + 10 wt% LaFe 9.9 Co 1.3 Si 1.8 ) achieved record-low thermal expansion coefficients (1.02 vs. 0.20×10 -6 K -1 ), representing 52.3% and 42.9% reductions over single-component hybrid, respectively. This method enables 65 K operational window (283-348 K), surpassing previous composite (40 K) with 62.5% broader window while maintaining 1.52 T coercivity. The presence of an amorphous intergranular phase enables ZTE in hot-pressed Nd-Fe-B/La-Fe-Si hybrid magnet, demonstrating broad temperature window operational stability. This breakthrough bridges the long-standing gap between dimensional stability and magnetic performance in permanent magnets.

Supplementary files

Article information

Article type
Paper
Submitted
20 Aug 2025
Accepted
04 Jan 2026
First published
06 Jan 2026

J. Mater. Chem. C, 2026, Accepted Manuscript

Zero thermal expansion permanent magnet: an innovative exploration in permanent magnet research

Z. Deng, M. Zhu, Q. Sun, X. Song, J. Wang, J. Zuo, X. Wu and Q. Wang, J. Mater. Chem. C, 2026, Accepted Manuscript , DOI: 10.1039/D5TC03133H

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