Time-dependent density functional theory with the orthogonal projector augmented wave method

被引:1
|
作者
Nguyen, Minh [1 ]
Duong, Tim [1 ]
Neuhauser, Daniel [1 ]
机构
[1] Univ Calif Los Angeles, Dept Chem & Biochem, Los Angeles, CA 90095 USA
来源
JOURNAL OF CHEMICAL PHYSICS | 2024年 / 160卷 / 14期
基金
美国国家科学基金会;
关键词
ELECTRONIC-STRUCTURE CALCULATIONS; REAL-SPACE; AB-INITIO; IMPLEMENTATION;
D O I
10.1063/5.0193343
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
The projector augmented wave (PAW) method of Blochl linearly maps smooth pseudo wavefunctions to the highly oscillatory all-electron DFT orbitals. Compared to norm-conserving pseudopotentials (NCPP), PAW has the advantage of lower kinetic energy cutoffs and larger grid spacing at the cost of having to solve for non-orthogonal wavefunctions. We earlier developed orthogonal PAW (OPAW) to allow the use of PAW when orthogonal wavefunctions are required. In OPAW, the pseudo wavefunctions are transformed through the efficient application of powers of the PAW overlap operator with essentially no extra cost compared to NCPP methods. Previously, we applied OPAW to DFT. Here, we take the first step to make OPAW viable for post-DFT methods by implementing it in real-time time-dependent (TD) DFT. Using fourth-order Runge-Kutta for the time-propagation, we compare calculations of absorption spectra for various organic and biological molecules and show that very large grid spacings are sufficient, 0.6-0.7 bohr in OPAW-TDDFT rather than the 0.4-0.5 bohr used in traditional NCPP-TDDFT calculations. This reduces the memory and propagation costs by around a factor of 3. Our method would be directly applicable to any post-DFT methods that require time-dependent propagations such as the GW approximation and the Bethe-Salpeter equation.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] Time-dependent density functional theory for quantum transport
    Kwok, Yanho
    Zhang, Yu
    Chen, GuanHua
    FRONTIERS OF PHYSICS, 2014, 9 (06) : 698 - 710
  • [42] General excitations in time-dependent density functional theory
    Vahtras, Olav
    Rinkevicius, Zilvinas
    JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (11):
  • [43] Time-dependent density-functional theory for superfluids
    Chiofalo, ML
    Tosi, MP
    EUROPHYSICS LETTERS, 2001, 53 (02): : 162 - 168
  • [44] A Brief Compendium of Time-Dependent Density Functional Theory
    Ullrich, Carsten A.
    Yang, Zeng-hui
    BRAZILIAN JOURNAL OF PHYSICS, 2014, 44 (01) : 154 - 188
  • [45] PAIRING DYNAMICS AND TIME-DEPENDENT DENSITY FUNCTIONAL THEORY
    Magierski, P.
    Grineviciute, J.
    Sekizawa, K.
    ACTA PHYSICA POLONICA B, 2018, 49 (03): : 281 - 291
  • [46] Charge transfer in time-dependent density functional theory
    Maitra, Neepa T.
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2017, 29 (42)
  • [47] Floquet formulation of time-dependent density functional theory
    Telnov, D. A.
    Chu, S.-I.
    Chemical Physics Letters, 264 (05):
  • [48] Time-dependent density functional theory for nonadiabatic processes
    Baer, R
    Kurzweil, Y
    Cederbaum, LS
    ISRAEL JOURNAL OF CHEMISTRY, 2005, 45 (1-2) : 161 - 170
  • [49] Time-dependent density functional theory for quantum transport
    Zheng, Xiao
    Chen, GuanHua
    Mo, Yan
    Koo, SiuKong
    Tian, Heng
    Yam, ChiYung
    Yan, YiJing
    JOURNAL OF CHEMICAL PHYSICS, 2010, 133 (11):
  • [50] A new challenge for time-dependent density functional theory
    van Faassen, Meta
    Burke, Kieron
    CHEMICAL PHYSICS LETTERS, 2006, 431 (4-6) : 410 - 414