Direct insight into the structure-property relation of interfaces from constrained crystal structure prediction

GND
1244838780
ORCID
0000-0002-4580-2897
Zugehörigkeit
Institut für Festkörpertheorie und -optik, Friedrich-Schiller-Universität Jena, Jena, Germany
Sun, Lin;
ORCID
0000-0003-0170-8222
Zugehörigkeit
European Theoretical Spectroscopy Facility
Marques, Miguel A. L.;
GND
1209959178
ORCID
0000-0002-4920-2370
Zugehörigkeit
Institut für Festkörpertheorie und -optik, Friedrich-Schiller-Universität Jena, Jena, Germany
Botti, Silvana

A major issue that prevents a full understanding of heterogeneous materials is the lack of systematic first-principles methods to consistently predict energetics and electronic properties of reconstructed interfaces. In this work we address this problem with an efficient and accurate computational scheme. We extend the minima-hopping method implementing constraints crafted for two-dimensional atomic relaxation and enabling variations of the atomic density close to the interface. A combination of density-functional and accurate density-functional tight-binding calculations supply energy and forces to structure prediction. We demonstrate the power of this method by applying it to extract structure-property relations for a large and varied family of symmetric and asymmetric tilt boundaries in polycrystalline silicon. We find a rich polymorphism in the interface reconstructions, with recurring bonding patterns that we classify in increasing energetic order. Finally, a clear relation between bonding patterns and electrically active grain boundary states is unveiled and discussed.

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