Quantum‐mechanical condensed matter simulations with CRYSTAL
Тип публикации: Journal Article
Дата публикации: 2018-03-04
scimago Q1
wos Q1
БС1
SJR: 4.501
CiteScore: 38.1
Impact factor: 27
ISSN: 17590876, 17590884
Materials Chemistry
Biochemistry
Physical and Theoretical Chemistry
Computer Science Applications
Computational Mathematics
Краткое описание
The latest release of the Crystal program for solid-state quantum-mechanical ab initio simulations is presented. The program adopts atom-centered Gaussian-type functions as a basis set, which makes it possible to perform all-electron as well as pseudopotential calculations. Systems of any periodicity can be treated at the same level of accuracy (from 0D molecules, clusters and nanocrystals, to 1D polymers, helices, nanorods, and nanotubes, to 2D monolayers and slab models for surfaces, to actual 3D bulk crystals), without any artificial repetition along nonperiodic directions for 0–2D systems. Density functional theory calculations can be performed with a variety of functionals belonging to several classes: local-density (LDA), generalized-gradient (GGA), meta-GGA, global hybrid, range-separated hybrid, and self-consistent system-specific hybrid. In particular, hybrid functionals can be used at a modest computational cost, comparable to that of pure LDA and GGA formulations, because of the efficient implementation of exact nonlocal Fock exchange. Both translational and point-symmetry features are fully exploited at all steps of the calculation, thus drastically reducing the corresponding computational cost. The various properties computed encompass electronic structure (including magnetic spin-polarized open-shell systems, electron density analysis), geometry (including full or constrained optimization, transition-state search), vibrational properties (frequencies, infrared and Raman intensities, phonon density of states), thermal properties (quasi-harmonic approximation), linear and nonlinear optical properties (static and dynamic [hyper]polarizabilities), strain properties (elasticity, piezoelectricity, photoelasticity), electron transport properties (Boltzmann, transport across nanojunctions), as well as X-ray and inelastic neutron spectra. The program is distributed in serial, parallel, and massively parallel versions. In this paper, the original developments that have been devised and implemented in the last 4 years (since the distribution of the previous public version, Crystal14, occurred in December 2013) are described.
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Dovesi R. et al. Quantum‐mechanical condensed matter simulations with CRYSTAL // Wiley Interdisciplinary Reviews: Computational Molecular Science. 2018. Vol. 8. No. 4.
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Dovesi R., Erba A., Orlando R., Zicovich Wilson C. M., Civalleri B., Maschio L., Rérat M., Casassa S., Baima J., Salustro S., Kirtman B. Quantum‐mechanical condensed matter simulations with CRYSTAL // Wiley Interdisciplinary Reviews: Computational Molecular Science. 2018. Vol. 8. No. 4.
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TY - JOUR
DO - 10.1002/wcms.1360
UR - https://doi.org/10.1002/wcms.1360
TI - Quantum‐mechanical condensed matter simulations with CRYSTAL
T2 - Wiley Interdisciplinary Reviews: Computational Molecular Science
AU - Dovesi, Roberto
AU - Erba, Alessandro
AU - Orlando, Roberto
AU - Zicovich Wilson, Claudio M
AU - Civalleri, Bartolomeo
AU - Maschio, Lorenzo
AU - Rérat, Michel
AU - Casassa, Silvia
AU - Baima, Jacopo
AU - Salustro, Simone
AU - Kirtman, Bernard
PY - 2018
DA - 2018/03/04
PB - Wiley
IS - 4
VL - 8
SN - 1759-0876
SN - 1759-0884
ER -
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@article{2018_Dovesi,
author = {Roberto Dovesi and Alessandro Erba and Roberto Orlando and Claudio M Zicovich Wilson and Bartolomeo Civalleri and Lorenzo Maschio and Michel Rérat and Silvia Casassa and Jacopo Baima and Simone Salustro and Bernard Kirtman},
title = {Quantum‐mechanical condensed matter simulations with CRYSTAL},
journal = {Wiley Interdisciplinary Reviews: Computational Molecular Science},
year = {2018},
volume = {8},
publisher = {Wiley},
month = {mar},
url = {https://doi.org/10.1002/wcms.1360},
number = {4},
doi = {10.1002/wcms.1360}
}