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Open AccessJournal ArticleDOI

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

Evgeny Epifanovsky, +238 more
- 28 Aug 2021 - 
- Vol. 155, Iss: 8, pp 084801
TLDR
The Q-Chem quantum chemistry program package as discussed by the authors provides a suite of tools for modeling core-level spectroscopy, methods for describing metastable resonances, and methods for computing vibronic spectra, the nuclear-electronic orbital method, and several different energy decomposition analysis techniques.
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.

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Citations
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Journal ArticleDOI

Best‐Practice DFT Protocols for Basic Molecular Computational Chemistry

TL;DR: In this paper , the authors provide best-practice guidance on the numerous methodological and technical aspects of density functional theory (DFT) calculations in three parts: Firstly, they set the stage and introduce a step-by-step decision tree to choose a computational protocol that models the experiment as closely as possible.
Journal ArticleDOI

Revisiting the Performance of Time-Dependent Density Functional Theory for Electronic Excitations: Assessment of 43 Popular and Recently Developed Functionals from Rungs One to Four.

TL;DR: In this paper , the performance of more than 40 popular or recently developed density functionals is assessed for the calculation of 463 vertical excitation energies against the large and accurate QuestDB benchmark set.
Journal ArticleDOI

Elevating density functional theory to chemical accuracy for water simulations through a density-corrected many-body formalism.

TL;DR: In this article, the authors presented a data-driven many-body potential energy function based on density-corrected SCAN functional that quantitatively reproduces the energy properties of gas-phase water clusters, and correctly predicts the properties of liquid water.
Journal ArticleDOI

Improving Results by Improving Densities: Density-Corrected Density Functional Theory.

TL;DR: Density-corrected DFT (DC-DFT) as mentioned in this paper is a popular approach to improve the performance of density functional theory calculations, where the Hartree-Fock density is replaced with a more accurate density.
Journal ArticleDOI

Reliably assessing the electronic structure of cytochrome P450 on today’s classical computers and tomorrow’s quantum computers

TL;DR: In this article , the authors explore what quantum and classical resources are required to simulate a series of pharmaceutically relevant molecules and show that reliable classical simulation of these molecules requires significant resources and therefore is a promising candidate for quantum simulation.
References
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Journal ArticleDOI

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TL;DR: A simple derivation of a simple GGA is presented, in which all parameters (other than those in LSD) are fundamental constants, and only general features of the detailed construction underlying the Perdew-Wang 1991 (PW91) GGA are invoked.
Journal ArticleDOI

Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density

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Journal ArticleDOI

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TL;DR: In this paper, the Hartree and Hartree-Fock equations are applied to a uniform electron gas, where the exchange and correlation portions of the chemical potential of the gas are used as additional effective potentials.
Journal ArticleDOI

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TL;DR: This work reports a gradient-corrected exchange-energy functional, containing only one parameter, that fits the exact Hartree-Fock exchange energies of a wide variety of atomic systems with remarkable accuracy, surpassing the performance of previous functionals containing two parameters or more.
Journal ArticleDOI

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