Highly Efficient Implementation of Pseudospectral Time-Dependent Density-Functional Theory for the Calculation of Excitation Energies of Large Molecules

被引:34
作者
Cao, Yixiang [1 ]
Hughes, Thomas [1 ]
Giesen, Dave [1 ]
Halls, Mathew D. [1 ]
Goldberg, Alexander [2 ]
Vadicherla, Tati Reddy [3 ]
Sastry, Madhavi [4 ]
Patel, Bhargav [4 ]
Sherman, Woody [5 ]
Weisman, Andrew L. [6 ]
Friesner, Richard A. [7 ]
机构
[1] Schrodinger Inc, 120 West 45th St,Tower 45,17th Floor, New York, NY 10036 USA
[2] Schrodinger Inc, 8910 Univ Lane,Suite 270, San Diego, CA 92122 USA
[3] Schrodinger, Plot 573,B&C,Rd 1,Jubilee Hills, Hyderabad 5000096, Telangana, India
[4] Schrodinger, Sanali Infopk,8-2-120-113,Banjara Hills, Hyderabad 500034, Andhra Pradesh, India
[5] Schrodinger Inc, 245 First St Riverview 2,18th Floor, Cambridge, MA 02142 USA
[6] Columbia Univ, Dept Appl Phys & Appl Math, New York, NY 10027 USA
[7] Columbia Univ, Dept Chem, New York, NY 10027 USA
关键词
time-dependent density-functional theory; density-functional theory; pseudospectral; Tamm-Dancoff approximation; GAUSSIAN-BASIS SETS; ELECTRONIC-STRUCTURE CALCULATIONS; HARTREE-FOCK EQUATIONS; AUXILIARY BASIS-SETS; EXCITED-STATES; APPROXIMATION; INTEGRALS; ATOMS; EXCHANGE; COMPUTATION;
D O I
10.1002/jcc.24350
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We have developed and implemented pseudospectral time-dependent density-functional theory (TDDFT) in the quantum mechanics package Jaguar to calculate restricted singlet and restricted triplet, as well as unrestricted excitation energies with either full linear response (FLR) or the Tamm-Dancoff approximation (TDA) with the pseudospectral length scales, pseudospectral atomic corrections, and pseudospectral multigrid strategy included in the implementations to improve the chemical accuracy and to speed the pseudospectral calculations. The calculations based on pseudospectral timedependent density-functional theory with full linear response (PS-FLR-TDDFT) and within the Tamm-Dancoff approximation (PS-TDA-TDDFT) for G2 set molecules using B3LYP/6-31G** show mean and maximum absolute deviations of 0.0015 eV and 0.0081 eV, 0.0007 eV and 0.0064 eV, 0.0004 eV and 0.0022 eV for restricted singlet excitation energies, restricted triplet excitation energies, and unrestricted excitation energies, respectively; compared with the results calculated from the conventional spectral method. The application of PS-FLR-TDDFT to OLED molecules and organic dyes, as well as the comparisons for results calculated from PS-FLR-TDDFT and best estimations demonstrate that the accuracy of both PS-FLR-TDDFT and PS-TDA-TDDFT. Calculations for a set of medium-sized molecules, including C-n fullerenes and nanotubes, using the B3LYP functional and 6-31G** basis set show PS-TDA-TDDFT provides 19- to 34-fold speedups for C-n fullerenes with 450-1470 basis functions, 11- to 32-fold speedups for nanotubes with 660-3180 basis functions, and 9- to 16-fold speedups for organic molecules with 540-1340 basis functions compared to fully analytic calculations without sacrificing chemical accuracy. The calculations on a set of larger molecules, including the antibiotic drug Ramoplanin, the 46-residue crambin protein, fullerenes up to C-540 and nanotubes up to 143(6,6), using the B3LYP functional and 6-31G** basis set with up to 8100 basis functions show that PS-FLR-TDDFT CPU time scales as N-2.05 with the number of basis functions. (C) 2016 Wiley Periodicals, Inc.
引用
收藏
页码:1425 / 1441
页数:17
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