Institute for Physical and Theoretical Chemistry, Universität Regensburg, Universitätsstrasse 31, D-93040 Regensburg, Germany.
J Chem Phys. 2011 Mar 7;134(9):094101. doi: 10.1063/1.3554209.
We present a density fitted local configuration interaction singles (CIS) method for calculating optical band gaps in 1D-periodic systems. The method is based on the Davidson diagonalization procedure, carried out in the reciprocal space. The one-electron part of the matrix-vector products is also evaluated in the reciprocal space, where the diagonality of the Fock matrix can be exploited. The contraction of the CIS vectors with the two electron integrals is performed in the direct space in the basis of localized occupied (Wannier) and virtual (projected atomic) orbitals. The direct space approach allows to utilize the sparsity of the integrals due to the local representation and locality of the exciton. The density fitting approximation employed for the two electron integrals reduces the nominal scaling with unit cell size to O(N(4)). Test calculations on a series of prototypical systems demonstrate that the method in its present stage can be used to calculate the excitonic band gaps of polymers with up to a few dozens of atoms in the cell. The computational cost depends on the locality of the exciton, but even relatively delocalized excitons occurring in the polybiphenyl in the parallel orientation, can be routinely treated with this method.
我们提出了一种用于计算一维周期性体系光学带隙的密度拟合局域组态相互作用单重态(CIS)方法。该方法基于在倒空间中进行的戴维森对角化程序。矩阵-向量乘积的单电子部分也在倒空间中进行评估,在那里可以利用福克矩阵的对角性。CIS 向量与两个电子积分的收缩在直接空间中进行,在局域占据(Wannier)和虚拟(投影原子)轨道的基中进行。直接空间方法由于激子的局部表示和局域性允许利用积分的稀疏性。用于两个电子积分的密度拟合近似将标称的与单元尺寸的比例降低到 O(N(4))。对一系列原型系统的测试计算表明,该方法在其现有阶段可用于计算单元中具有几十个原子的聚合物的激子带隙。计算成本取决于激子的局域性,但即使是在平行取向的多联苯中出现的相对离域激子,也可以通过该方法常规处理。