Kussmann Jörg, Ochsenfeld Christian
Theoretische Chemie, Auf der Morgenstelle 8, Universität Tübingen, Tübingen, Germany.
J Chem Phys. 2007 Nov 28;127(20):204103. doi: 10.1063/1.2794033.
A density matrix-based time-dependent self-consistent field (D-TDSCF) method for the calculation of dynamic polarizabilities and first hyperpolarizabilities using the Hartree-Fock and Kohn-Sham density functional theory approaches is presented. The D-TDSCF method allows us to reduce the asymptotic scaling behavior of the computational effort from cubic to linear for systems with a nonvanishing band gap. The linear scaling is achieved by combining a density matrix-based reformulation of the TDSCF equations with linear-scaling schemes for the formation of Fock- or Kohn-Sham-type matrices. In our reformulation only potentially linear-scaling matrices enter the formulation and efficient sparse algebra routines can be employed. Furthermore, the corresponding formulas for the first hyperpolarizabilities are given in terms of zeroth- and first-order one-particle reduced density matrices according to Wigner's (2n+1) rule. The scaling behavior of our method is illustrated for first exemplary calculations with systems of up to 1011 atoms and 8899 basis functions.
提出了一种基于密度矩阵的含时自洽场(D-TDSCF)方法,用于使用Hartree-Fock和Kohn-Sham密度泛函理论方法计算动态极化率和第一超极化率。对于具有非零带隙的系统,D-TDSCF方法使我们能够将计算量的渐近缩放行为从立方降低到线性。通过将基于密度矩阵的TDSCF方程重新表述与用于形成Fock型或Kohn-Sham型矩阵的线性缩放方案相结合来实现线性缩放。在我们的重新表述中,只有潜在的线性缩放矩阵进入公式,并且可以采用高效的稀疏代数例程。此外,根据维格纳(2n + 1)规则,第一超极化率的相应公式是根据零阶和一阶单粒子约化密度矩阵给出的。通过对多达1011个原子和8899个基函数的系统进行首次示例计算,说明了我们方法的缩放行为。