Computational materials design of crystalline solids
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Author(s)
Butler, KT
Frost, JM
Skelton, JM
Svane, KL
Walsh, A
Type
Journal Article
Abstract
The modelling of materials properties and processes from first principles is becoming sufficiently accurate as to facilitate the design and testing of new systems in silico. Computational materials science is both valuable and increasingly necessary for developing novel functional materials and composites that meet the requirements of next-generation technology. A range of simulation techniques are being developed and applied to problems related to materials for energy generation, storage and conversion including solar cells, nuclear reactors, batteries, fuel cells, and catalytic systems. Such techniques may combine crystal-structure prediction (global optimisation), data mining (materials informatics) and high-throughput screening with elements of machine learning. We explore the development process associated with computational materials design, from setting the requirements and descriptors to the development and testing of new materials. As a case study, we critically review progress in the fields of thermoelectrics and photovoltaics, including the simulation of lattice thermal conductivity and the search for Pb-free hybrid halide perovskites. Finally, a number of universal chemical-design principles are advanced.
Date Issued
2016-03-18
Date Acceptance
2016-03-01
Citation
Chemical Society Reviews, 2016, 45, pp.6138-6146
ISSN
1460-4744
Publisher
Royal Society of Chemistry
Start Page
6138
End Page
6146
Journal / Book Title
Chemical Society Reviews
Volume
45
Copyright Statement
© The Royal Society of Chemistry 2016. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (https://creativecommons.org/licenses/by/3.0/)
License URL
Subjects
General Chemistry
03 Chemical Sciences
Publication Status
Published