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Augmentation of Universal Potentials for Broad Applications

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arxiv 2407.14288 v1 pith:43F4TMGL submitted 2024-07-19 cond-mat.mtrl-sci

Augmentation of Universal Potentials for Broad Applications

classification cond-mat.mtrl-sci
keywords potentialsuniversalexplainsurfacesystemsapplicationapplicationsapproach
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Universal potentials open the door for DFT level calculations at a fraction of their cost. We find that for application to systems outside the scope of its training data, CHGNet\cite{deng2023chgnet} has the potential to succeed out of the box, but can also fail significantly in predicting the ground state configuration. We demonstrate that via fine-tuning or a $\Delta$-learning approach it is possible to augment the overall performance of universal potentials for specific cluster and surface systems. We utilize this to investigate and explain experimentally observed defects in the Ag(111)-O surface reconstruction and explain the mechanics behind its formation.

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