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Universal fragment descriptors for predicting properties of inorganic crystals.


ABSTRACT: Although historically materials discovery has been driven by a laborious trial-and-error process, knowledge-driven materials design can now be enabled by the rational combination of Machine Learning methods and materials databases. Here, data from the AFLOW repository for ab initio calculations is combined with Quantitative Materials Structure-Property Relationship models to predict important properties: metal/insulator classification, band gap energy, bulk/shear moduli, Debye temperature and heat capacities. The prediction's accuracy compares well with the quality of the training data for virtually any stoichiometric inorganic crystalline material, reciprocating the available thermomechanical experimental data. The universality of the approach is attributed to the construction of the descriptors: Property-Labelled Materials Fragments. The representations require only minimal structural input allowing straightforward implementations of simple heuristic design rules.

SUBMITTER: Isayev O 

PROVIDER: S-EPMC5465371 | biostudies-literature | 2017 Jun

REPOSITORIES: biostudies-literature

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Universal fragment descriptors for predicting properties of inorganic crystals.

Isayev Olexandr O   Oses Corey C   Toher Cormac C   Gossett Eric E   Curtarolo Stefano S   Tropsha Alexander A  

Nature communications 20170605


Although historically materials discovery has been driven by a laborious trial-and-error process, knowledge-driven materials design can now be enabled by the rational combination of Machine Learning methods and materials databases. Here, data from the AFLOW repository for ab initio calculations is combined with Quantitative Materials Structure-Property Relationship models to predict important properties: metal/insulator classification, band gap energy, bulk/shear moduli, Debye temperature and he  ...[more]

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