Time-dependent density-functional tight-binding method with the third-order expansion of electron density

被引:24
作者
Nishimoto, Yoshio [1 ]
机构
[1] Kyoto Univ, Fukui Inst Fundamental Chem, Sakyo Ku, Kyoto 6068103, Japan
关键词
SCC-DFTB METHOD; EXCITATION-ENERGIES; PARAMETRIZATION; WATER; PARAMETERIZATION; IMPLEMENTATION; DERIVATIVES; DFTB3/3OB; BENCHMARK; DYNAMICS;
D O I
10.1063/1.4929926
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We develop a formalism for the calculation of excitation energies and excited state gradients for the self-consistent-charge density-functional tight-binding method with the third-order contributions of a Taylor series of the density functional theory energy with respect to the fluctuation of electron density (time-dependent density-functional tight-binding (TD-DFTB3)). The formulation of the excitation energy is based on the existing time-dependent density functional theory and the older TD-DFTB2 formulae. The analytical gradient is computed by solving Z-vector equations, and it requires one to calculate the third-order derivative of the total energy with respect to density matrix elements due to the inclusion of the third-order contributions. The comparison of adiabatic excitation energies for selected small and medium-size molecules using the TD-DFTB2 and TD-DFTB3 methods shows that the inclusion of the third-order contributions does not affect excitation energies significantly. A different set of parameters, which are optimized for DFTB3, slightly improves the prediction of adiabatic excitation energies statistically. The application of TD-DFTB for the prediction of absorption and fluorescence energies of cresyl violet demonstrates that TD-DFTB3 reproduced the experimental fluorescence energy quite well. (C) 2015 AIP Publishing LLC.
引用
收藏
页数:11
相关论文
共 63 条
[1]   Computational Spectroscopy of Large Systems in Solution: The DFTB/PCM and TD-DFTB/PCM Approach [J].
Barone, Vincenzo ;
Carnimeo, Ivan ;
Scalmani, Giovanni .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2013, 9 (04) :2052-2071
[2]   Time dependent density functional theory study of charge-transfer and intramolecular electronic excitations in acetone-water systems [J].
Bernasconi, L ;
Sprik, M ;
Hutter, J .
JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (23) :12417-12431
[3]   Origin of the size-dependent fluorescence blueshift in [n]cycloparaphenylenes [J].
Camacho, Cristopher ;
Niehaus, Thomas A. ;
Itami, Kenichiro ;
Irle, Stephan .
CHEMICAL SCIENCE, 2013, 4 (01) :187-195
[4]  
Casida M. E., 1995, RECENT ADV DENSITY F, DOI [10.1142/9789812830586, DOI 10.1142/9789812830586]
[5]  
Casida ME, 2009, J MOL STRUC-THEOCHEM, V914, P3, DOI 10.1016/j.theochem.2009.08.018
[6]   Excited state geometry optimizations by analytical energy gradient of long-range corrected time-dependent density functional theory [J].
Chiba, M ;
Tsuneda, T ;
Hirao, K .
JOURNAL OF CHEMICAL PHYSICS, 2006, 124 (14)
[7]   ITERATIVE CALCULATION OF A FEW OF LOWEST EIGENVALUES AND CORRESPONDING EIGENVECTORS OF LARGE REAL-SYMMETRIC MATRICES [J].
DAVIDSON, ER .
JOURNAL OF COMPUTATIONAL PHYSICS, 1975, 17 (01) :87-94
[8]   Extensions of the Time-Dependent Density Functional Based Tight-Binding Approach [J].
Dominguez, A. ;
Aradi, B. ;
Frauenheim, T. ;
Lutsker, V. ;
Niehaus, T. A. .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2013, 9 (11) :4901-4914
[9]   Single-reference ab initio methods for the calculation of excited states of large molecules [J].
Dreuw, A ;
Head-Gordon, M .
CHEMICAL REVIEWS, 2005, 105 (11) :4009-4037
[10]   Self-consistent-charge density-functional tight-binding method for simulations of complex materials properties [J].
Elstner, M ;
Porezag, D ;
Jungnickel, G ;
Elsner, J ;
Haugk, M ;
Frauenheim, T ;
Suhai, S ;
Seifert, G .
PHYSICAL REVIEW B, 1998, 58 (11) :7260-7268