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Claudio Cazorla

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Review Jul 2026

Thermodynamics-Informed Machine Learning for Energy Materials Discovery

It is argued that developing thermodynamics-informed ML constitutes one of the most important and least explored frontiers in materials discovery and that the next generation of ML models must move beyond static energy predictions towards a thermodynamic description of materials behaviour under realistic operating conditions.

Pol Benítez, Cibr'an L'opez, Claudio Cazorla · 0 citations