English

Grain Boundary Properties of Elemental Metals

Materials Science 2019-07-23 v1

Abstract

The structure and energy of grain boundaries (GBs) are essential for predicting the properties of polycrystalline materials. In this work, we use high-throughput density functional theory calculations workflow to construct the Grain Boundary Database (GBDB), the largest database of DFT-computed grain boundary properties to date. The database currently encompasses 327 GBs of 58 elemental metals, including 10 common twist or symmetric tilt GBs for body-centered cubic (bcc) and face-centered cubic (fcc) systems and the Σ\Sigma7 [0001] twist GB for hexagonal close-packed (hcp) systems. In particular, we demonstrate a novel scaled-structural template approach for HT GB calculations, which reduces the computational cost of converging GB structures by a factor of 36\sim 3-6. The grain boundary energies and work of separation are rigorously validated against previous experimental and computational data. Using this large GB dataset, we develop an improved predictive model for the GB energy of different elements based on the cohesive energy and shear modulus. The open GBDB represent a significant step forward in the availability of first principles GB properties, which we believe would help guide the future design of polycrystalline materials.

Keywords

Cite

@article{arxiv.1907.08905,
  title  = {Grain Boundary Properties of Elemental Metals},
  author = {Hui Zheng and Xiang-Guo Li and Richard Tran and Chi Chen and Matthew Horton and Donny Winston and Kristin Aslaug Persson and Shyue Ping Ong},
  journal= {arXiv preprint arXiv:1907.08905},
  year   = {2019}
}

Comments

32 pages, 8 figures, 2 tables in main manuscript; 6 figures, 5 tables, in 14 pages of Supplementary Information