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Software for the frontiers of quantum chemistry: An overview of developments in the Q-Chem 5 package

Authors :
Epifanovsky, Evgeny
Gilbert, Andrew TB
Feng, Xintian
Lee, Joonho
Mao, Yuezhi
Mardirossian, Narbe
Pokhilko, Pavel
White, Alec F
Coons, Marc P
Dempwolff, Adrian L
Gan, Zhengting
Hait, Diptarka
Horn, Paul R
Jacobson, Leif D
Kaliman, Ilya
Kussmann, Jörg
Lange, Adrian W
Lao, Ka Un
Levine, Daniel S
Liu, Jie
McKenzie, Simon C
Morrison, Adrian F
Nanda, Kaushik D
Plasser, Felix
Rehn, Dirk R
Vidal, Marta L
You, Zhi-Qiang
Zhu, Ying
Alam, Bushra
Albrecht, Benjamin J
Aldossary, Abdulrahman
Alguire, Ethan
Andersen, Josefine H
Athavale, Vishikh
Barton, Dennis
Begam, Khadiza
Behn, Andrew
Bellonzi, Nicole
Bernard, Yves A
Berquist, Eric J
Burton, Hugh GA
Carreras, Abel
Carter-Fenk, Kevin
Chakraborty, Romit
Chien, Alan D
Closser, Kristina D
Cofer-Shabica, Vale
Dasgupta, Saswata
de Wergifosse, Marc
Deng, Jia
Diedenhofen, Michael
Do, Hainam
Ehlert, Sebastian
Fang, Po-Tung
Fatehi, Shervin
Feng, Qingguo
Friedhoff, Triet
Gayvert, James
Ge, Qinghui
Gidofalvi, Gergely
Goldey, Matthew
Gomes, Joe
González-Espinoza, Cristina E
Gulania, Sahil
Gunina, Anastasia O
Hanson-Heine, Magnus WD
Harbach, Phillip HP
Hauser, Andreas
Herbst, Michael F
Hernández Vera, Mario
Hodecker, Manuel
Holden, Zachary C
Houck, Shannon
Huang, Xunkun
Hui, Kerwin
Huynh, Bang C
Ivanov, Maxim
Jász, Ádám
Ji, Hyunjun
Jiang, Hanjie
Kaduk, Benjamin
Kähler, Sven
Khistyaev, Kirill
Kim, Jaehoon
Kis, Gergely
Klunzinger, Phil
Koczor-Benda, Zsuzsanna
Koh, Joong Hoon
Kosenkov, Dimitri
Koulias, Laura
Kowalczyk, Tim
Krauter, Caroline M
Kue, Karl
Kunitsa, Alexander
Kus, Thomas
Ladjánszki, István
Landau, Arie
Lawler, Keith V
Lefrancois, Daniel
Lehtola, Susi
Source :
The Journal of chemical physics, vol 155, iss 8
Publication Year :
2021
Publisher :
eScholarship, University of California, 2021.

Abstract

This article summarizes technical advances contained in the fifth major release of the Q-Chem quantum chemistry program package, covering developments since 2015. A comprehensive library of exchange-correlation functionals, along with a suite of correlated many-body methods, continues to be a hallmark of the Q-Chem software. The many-body methods include novel variants of both coupled-cluster and configuration-interaction approaches along with methods based on the algebraic diagrammatic construction and variational reduced density-matrix methods. Methods highlighted in Q-Chem 5 include a suite of tools for modeling core-level spectroscopy, methods for describing metastable resonances, methods for computing vibronic spectra, the nuclear-electronic orbital method, and several different energy decomposition analysis techniques. High-performance capabilities including multithreaded parallelism and support for calculations on graphics processing units are described. Q-Chem boasts a community of well over 100 active academic developers, and the continuing evolution of the software is supported by an "open teamware" model and an increasingly modular design.

Details

Database :
OpenAIRE
Journal :
The Journal of chemical physics, vol 155, iss 8
Accession number :
edsair.dedup.wf.001..48ddd67a3cba7ebdb2f120e03f9757c6