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Mark E. Casida

Researcher at University of Grenoble

Publications -  74
Citations -  13169

Mark E. Casida is an academic researcher from University of Grenoble. The author has contributed to research in topics: Time-dependent density functional theory & Density functional theory. The author has an hindex of 32, co-authored 72 publications receiving 12207 citations. Previous affiliations of Mark E. Casida include Centre national de la recherche scientifique & Université de Montréal.

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Molecular excitation energies to high-lying bound states from time-dependent density-functional response theory: Characterization and correction of the time-dependent local density approximation ionization threshold

TL;DR: In this paper, the performance of time-dependent density-functional response theory (TD-DFRT) for the calculation of high-lying bound electronic excitation energies of molecules is evaluated.
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Dynamic polarizabilities and excitation spectra from a molecular implementation of time‐dependent density‐functional response theory: N2 as a case study

TL;DR: In this paper, the authors report the implementation of time-dependent density functional response theory (TD-DFRT) for molecules using the timedependent local density approximation (TDLDA), which adds exchange and correlation response terms to their previous work which used the density functional theory (DFT) random phase approximation (RPA) [M. E. Casida, C. Jamorski, F. Bohr, J. Guan, and D. R. Salahub, in Theoretical and Computational Modeling of NLO and Electronic Materials, edited by S.
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Progress in Time-Dependent Density-Functional Theory

TL;DR: The objective of this article is to continue where a previous review of TD-DFT in Volume 55 of the Annual Review of Physical Chemistry left off and highlight some of the problems and solutions from the point of view of applied physical chemistry.
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Time-dependent density-functional theory for molecules and molecular solids

TL;DR: Time-dependent density-functional theory (TDDFT) has become a well-established part of the modern theoretical chemist's toolbox for treating electronic excited states as mentioned in this paper. Yet, though applications of TDDFT abound in quantum chemistry, review articles specifically focusing on TDDFTs for chemical applications are relatively rare.