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Discovering High-Strength Alloys via Physics-Transfer Learning

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arxiv 2403.07526 v2 pith:X37Y3ILS submitted 2024-03-12 cond-mat.mtrl-sci cs.LGphysics.comp-ph

classification cond-mat.mtrl-scics.LGphysics.comp-ph
keywords alloysmaterialpeierlsphysicsstrengthstressaccuracycrystal
verification ladder T0 review T1 audit T2 compute T3 formal
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Predicting the strength of materials requires considering various length and time scales, striking a balance between accuracy and efficiency. Peierls stress measures material strength by evaluating dislocation resistance to plastic flow, reliant on elastic lattice responses and crystal slip energy landscape. Computational challenges due to the non-local and non-equilibrium nature of dislocations prohibit Peierls stress evaluation from state-of-the-art material databases. We propose a data-driven framework that leverages neural networks trained on force field simulations to understand crystal plasticity physics, predicting Peierls stress from material parameters derived via density functional theory computations, which are otherwise computationally intensive for direct dislocation modeling. This physics transfer approach successfully screen the strength of metallic alloys from a limited number of single-point calculations with chemical accuracy. Guided by these predictions, we fabricate high-strength binary alloys previously unexplored, utilizing high-throughput ion beam deposition techniques. The framework extends to problems facing the accuracy-performance dilemma in general by harnessing the hierarchy of physics of multiscale models in materials sciences.

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  1. Predicting Brain Morphogenesis via Physics-Transfer Learning

    q-bio.NC 2025-08 reject novelty 5.0 of 10

    A physics-transfer graph network trained on simulated growth of simple elastic shells predicts curvature and short-term shape change on a fetal brain atlas, but validation is limited to a single population-averaged atlas.

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