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Molecular-orbital-free algorithm for excited states in time-dependent perturbation theory

机译:时变扰动理论中无分子轨道激发态的算法

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A nonlinear conjugate gradient optimization scheme is used to obtain excitation energies within the random phase approximation (RPA). The solutions to the RPA eigenvalue equation are located through a variational characterization using a modified Thouless functional, which is based upon an asymmetric Rayleigh quotient, in an orthogonalized atomic orbital representation. In this way, the computational bottleneck of calculating molecular orbitals is avoided. The variational space is reduced to the physically-relevant transitions by projections. The feasibility of an RPA implementation scaling linearly with system size N is investigated by monitoring convergence behavior with respect to the quality of initial guess and sensitivity to noise under thresholding, both for well- and ill-conditioned problems. The molecular-orbital-free algorithm is found to be robust and computationally efficient, providing a first step toward large-scale, reduced complexity calculations of time-dependent optical properties and linear response. The algorithm is extensible to other forms of time-dependent perturbation theory including, but not limited to, time-dependent density functional theory. (C) 2008 American Institute of Physics.
机译:非线性共轭梯度优化方案用于获得随机相位近似(RPA)内的激发能。 RPA特征值方程的解通过使用修正的Thouless泛函的变分表征来定位,该泛函基于正交的原子轨道表示中的非对称瑞利商。这样,避免了计算分子轨道的计算瓶颈。通过投影将变化空间减小到与物理相关的过渡。 RPA实施与系统大小N线性比例缩放的可行性,是通过监视针对状况良好和病态问题的初始猜测质量和阈值下对噪声的敏感性方面的收敛行为来进行研究的。发现无分子轨道算法是鲁棒的并且计算效率高,这为朝着依赖时间的光学特性和线性响应的大规模,降低复杂度的计算迈出了第一步。该算法可扩展到其他形式的时变扰动理论,包括但不限于时变密度泛函理论。 (C)2008美国物理研究所。

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