4.6 Article

Interface structure prediction via CALYPSO method

期刊

SCIENCE BULLETIN
卷 64, 期 5, 页码 301-309

出版社

ELSEVIER
DOI: 10.1016/j.scib.2019.02.009

关键词

Solid-solid interface; Structure prediction method; Lattice mismatch; TiO2 grain boundary

资金

  1. National Natural Science Foundation of China [11774127, 11822404, 11534003]
  2. National Key Research and Development Program of China [2016YFB0201200, 2016YFB0201201, 2016YFB0201204]
  3. Science Challenge Project [TZ2016001]
  4. Program for JLU Science and Technology Innovative Research Team (JLUSTIRT)

向作者/读者索取更多资源

The atomistic structures of solid-solid interfaces are of fundamental interests for understanding physical properties of interfacial materials. However, determination of interface structures faces a substantial challenge, both experimentally and theoretically. Here, we propose an efficient method for predicting interface structures via the generalization of our in-house developed CALYPSO method for structure prediction. We devised a lattice match toolkit that allows us to automatically search for the optimal latticematched superlattice for construction of the interface structures. In addition, bonding constraints (e.g., constraints on interatomic distances and coordination numbers of atoms) are imposed to generate better starting interface structures by taking advantages of the known bonding environment derived from the stable bulk phases. The interface structures evolve by following interfacially confined swarm intelligence algorithm, which is known to be efficient for exploration of potential energy surface. The method was validated by correctly predicting a number of known interface structures with only given information of two parent solids. The application of the developed method leads to prediction of two unknown grain boundary (GB) structures (r-GB and p-GB) of rutile TiO2 Sigma 5(2 1 0) under an O reducing atmosphere that contained Ti3+ as the result of O defects. Further calculations revealed that the intrinsic band gap of p-GB is reduced to 0.7 eV owing to substantial broadening of the Ti-3d interfacial levels from Ti3+ centers. Our results demonstrated that introduction of grain boundaries is an effective strategy to engineer the electronic properties and thus enhance the visible-light photoactivity of TiO2. (C) 2019 Science China Press. Published by Elsevier B.V. and Science China Press. All rights reserved.

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