High-throughput calculations of charged point defect properties with semi-local density functional theory—performance benchmarks for materials screening applications

Author:

Broberg Danny,Bystrom KyleORCID,Srivastava Shivani,Dahliah Diana,Williamson Benjamin A. D.,Weston Leigh,Scanlon David O.ORCID,Rignanese Gian-MarcoORCID,Dwaraknath ShyamORCID,Varley Joel,Persson Kristin A.ORCID,Asta Mark,Hautier Geoffroy

Abstract

AbstractCalculations of point defect energetics with Density Functional Theory (DFT) can provide valuable insight into several optoelectronic, thermodynamic, and kinetic properties. These calculations commonly use methods ranging from semi-local functionals witha-posterioricorrections to more computationally intensive hybrid functional approaches. For applications of DFT-based high-throughput computation for data-driven materials discovery, point defect properties are of interest, yet are currently excluded from available materials databases. This work presents a benchmark analysis of automated, semi-local point defect calculations witha-posterioricorrections, compared to 245 “gold standard” hybrid calculations previously published. We consider three differenta-posterioricorrection sets implemented in an automated workflow, and evaluate the qualitative and quantitative differences among four different categories of defect information: thermodynamic transition levels, formation energies, Fermi levels, and dopability limits. We highlight qualitative information that can be extracted from high-throughput calculations based on semi-local DFT methods, while also demonstrating the limits of quantitative accuracy.

Funder

DOE | Office of Science

DOE | LDRD | Lawrence Livermore National Laboratory

Publisher

Springer Science and Business Media LLC

Subject

Computer Science Applications,Mechanics of Materials,General Materials Science,Modeling and Simulation

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