Gokhberg K, Vysotskiy V, Cederbaum L S, Storchi L, Tarantelli F, Averbukh V
Theoretische Chemie, Physikalisch-Chemisches Institut, Universität Heidelberg, Im Neuenheimer Feld 229, D-69120 Heidelberg, Germany.
J Chem Phys. 2009 Feb 14;130(6):064104. doi: 10.1063/1.3073821.
Stieltjes imaging technique is widely used for the ab initio computation of photoionization cross sections and decay widths. The main problem hampering the application of the standard Stieltjes imaging algorithms in conjunction with high-level ab initio methods to polyatomic molecules is the requirement of full diagonalization of excessively large Hamiltonian matrices. Here we show that the full diagonalization bottleneck can be overcome by applying the Stieltjes imaging procedure to Lanczos pseudospectrum of the atomic or molecular Hamiltonian. Using the helium and neon atoms as examples, we demonstrate that the Lanczos pseudospectrum obtained after only a relatively small number of iterations can be used for Stieltjes-type calculations of photoionization cross sections essentially without loss of accuracy. The new technique is applied to the calculation of the total photoionization cross section of benzene within an ab initio approach explicitly taking into account single and double electronic excitations. Good agreement with experimental results is obtained.
斯蒂尔杰斯成像技术广泛用于光电离截面和衰变宽度的从头计算。阻碍将标准斯蒂尔杰斯成像算法与高级从头算方法结合应用于多原子分子的主要问题是需要对过大的哈密顿矩阵进行完全对角化。在此我们表明,通过将斯蒂尔杰斯成像过程应用于原子或分子哈密顿量的兰佐斯伪谱,可以克服完全对角化的瓶颈。以氦原子和氖原子为例,我们证明,仅经过相对较少次数的迭代得到的兰佐斯伪谱就可用于光电离截面的斯蒂尔杰斯型计算,且基本不会损失精度。新技术被应用于在明确考虑单电子和双电子激发的从头算方法内计算苯的总光电离截面。与实验结果取得了良好的一致性。