Department of Chemistry, University of Zurich, Zurich, Switzerland.
Nat Commun. 2023 Jan 6;14(1):106. doi: 10.1038/s41467-022-35694-4.
Real-time time-dependent density-functional theory (RT-TDDFT) and linear response time-dependent density-functional theory (LR-TDDFT) are two important approaches to simulate electronic spectra. However, the basis sets used in such calculations are usually the ones designed mainly for electronic ground state calculations. In this work, we propose a systematic and robust scheme to truncate the atomic orbital (AO) basis set employed in TDDFT and TD Hartree-Fock (TDHF) calculations. The truncated bases are tested for both LR- and RT-TDDFT as well as RT-TDHF approaches, and provide an acceleration up to an order of magnitude while the shifts of excitation energies of interest are generally within 0.2 eV. The procedure only requires one extra RT calculation with 1% of the total propagation time and a simple modification on basis set file, which allows an instant application in any quantum chemistry package supporting RT-/LR-TDDFT calculations. Aside from the reduced computational effort, this approach also offers valuable insight into the effect of different basis functions on computed electronic excitations and further ideas on the design of basis sets for special purposes.
实时含时密度泛函理论 (RT-TDDFT) 和线性响应含时密度泛函理论 (LR-TDDFT) 是两种模拟电子光谱的重要方法。然而,此类计算中使用的基组通常是专为电子基态计算而设计的。在这项工作中,我们提出了一种系统而稳健的方案,用于截断 TDDFT 和 TD 哈特利-福克 (TDHF) 计算中使用的原子轨道 (AO) 基组。测试了截断基组在 LR-和 RT-TDDFT 以及 RT-TDHF 方法中的应用,提供了高达一个数量级的加速,而感兴趣的激发能的位移通常在 0.2 eV 以内。该过程仅需要额外进行一次具有总传播时间 1%的 RT 计算,并对基组文件进行简单修改,从而可以在支持 RT-/LR-TDDFT 计算的任何量子化学软件包中立即应用。除了减少计算工作量外,该方法还提供了对不同基函数对计算电子激发影响的有价值的见解,并为特殊用途的基组设计提供了进一步的思路。