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민승규

Min, Seung Kyu
Theoretical/Computational Chemistry Group for Excited State Phenomena
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Recent Developments in DFTB plus , a Software Package for Efficient Atomistic Quantum Mechanical Simulations

Author(s)
Hourahine, B.Berdakin, M.Bich, J. A.Bonafe, F. P.Camacho, C.Cui, Q.Deshaye, M. Y.Diaz Miron, G.Ehlert, S.Elstner, M.Frauenheim, T.Goldman, N.Gonzalez Leon, R. A.van der Heide, T.Irle, S.Kowalczyk, T.Kubar, T.Lee, I. S.Lien-Medrano, C. R.Maryewski, A.Melson, T.Min, Seung KyuNiehaus, T.Niklasson, A. M. N.Pecchia, A.Reuter, K.Sanchez, C. G.Scheurer, C.Sentef, M. A.Stishenko, P. V.Vuong, V. Q.Aradi, B.
Issued Date
2025-06
DOI
10.1021/acs.jpca.5c01146
URI
https://scholarworks.unist.ac.kr/handle/201301/87300
Citation
JOURNAL OF PHYSICAL CHEMISTRY A, v.129, no.24, pp.5373 - 5390
Abstract
DFTB+ is a flexible, open-source software package developed by its community, designed for fast and efficient atomistic quantum mechanical simulations. It employs various methods that approximate density functional theory (DFT), such as density functional-based tight binding (DFTB) and the extended tight binding (xTB) approach allowing simulations of large systems over extended time scales with reasonable accuracy, while being significantly faster than traditional ab initio methods. In recent years, several new extensions of the DFTB method have been developed and implemented in the DFTB+ program package in order to improve the accuracy and generality of the available simulation results. In this paper, we review those enhancements, show several use case examples and discuss the strengths and limitations of its features.
Publisher
AMER CHEMICAL SOC
ISSN
1089-5639
Keyword
TIGHT-BINDING METHODCORRESPONDING ORBITALSEXCITATION-ENERGIESEXCITED-STATESMODELDENSITY-FUNCTIONAL THEORYSPINSELF-CONSISTENT-CHARGEREFERENCED KOHN-SHAMIMPLEMENTATION

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