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Discovery of Multicomponent Invar Materials With Low Thermal Expansion, High Curie Temperature, and Superior Phase Stability Assisted by Active Learning.

Sep 2026 · Advances in Materials · pp. e74942 · 0 citations · 55 references
Medicine

Abstract

Zero thermal expansion (ZTE) materials provide exceptional dimensional stability under temperature fluctuations, making them indispensable for high-precision instrumentation and extreme environments. However, their natural scarcity, combined with the vast compositional space in multicomponent systems, renders traditional trial-and-error approaches both time-consuming and cost-prohibitive, posing an emergent challenge for modern high-tech applications. Here, we establish a task-specific active-learning framework with empirical fine-tuning to accelerate ZTE materials' design. By mining sparse experimental datasets, we identified a high-potential compositional region and uncovered several novel low-expansion alloys. Among them, Cr1.4Co8.9Ni30.5Fe59 exhibits a low coefficient of thermal expansion of 1.9 ± 0.3 × 10 - 6 K - 1 , and a high Curie temperature reaching 580 K . Real-time in situ neutron and synchrotron x-ray diffraction confirm its single-phase face-centered cubic structure, excellent ductility, and robust phase stability against thermal and mechanical stimuli. Crucially, machine learning analysis pinpointed six key descriptors highly correlated with low-expansion performance, providing data-driven insights into the magnetovolume origins of this behavior. This work not only yields a high-performance dimensionally stable alloy, but also demonstrates how integrating physical insights with data-driven design can accelerate advanced materials development.

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