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Classification of properties and their relation to chemical bonding: Essential steps toward the inverse design of functional materials

Carl‐Friedrich Schön, Steffen van Bergerem, Christian Mattes, Aakash Yadav, Martin Grohe, Leif Kobbelt, Matthias Wuttig

2022Science Advances52 citationsDOIOpen Access PDF

Abstract

To design advanced functional materials, different concepts are currently pursued, including machine learning and high-throughput calculations. Here, a different approach is presented, which uses the innate structure of the multidimensional property space. Clustering algorithms confirm the intricate structure of property space and relate the different property classes to different chemical bonding mechanisms. For the inorganic compounds studied here, four different property classes are identified and related to ionic, metallic, covalent, and recently identified metavalent bonding. These different bonding mechanisms can be quantified by two quantum chemical bonding descriptors, the number of electrons transferred and the number of electrons shared between adjacent atoms. Hence, we can link these bonding descriptors to the corresponding property portfolio, turning bonding descriptors into property predictors. The close relationship between material properties and quantum chemical bonding descriptors can be used for an inverse material design, identifying particularly promising materials based on a set of target functionalities.

Topics & Concepts

Chemical bondProperty (philosophy)Chemical spaceIonic bondingComputer scienceQuantum chemicalCluster analysisCovalent bondInverseMaterials scienceMoleculeChemical physicsBiological systemChemistryMathematicsMachine learningIonOrganic chemistryEpistemologyDrug discoveryPhilosophyBiochemistryBiologyGeometryMachine Learning in Materials ScienceCrystallography and molecular interactionsInorganic Chemistry and Materials