Stanke Monika, Kedziera Dariusz, Bubin Sergiy, Adamowicz Ludwik
Department of Chemistry, University of Arizona, Tucson, Arizona 85721 and Institute of Physics, Nicholas Copernicus University, ulica Grudziadzka 5, PL 87-100 Toruń, Poland.
J Chem Phys. 2007 Oct 7;127(13):134107. doi: 10.1063/1.2755767.
Explicitly correlated Gaussian functions have been used to perform very accurate variational calculations for the ground states of (7)Li and (7)Li(-). The nuclear motion has been explicitly included in the calculations (i.e., they have been done without assuming the Born-Oppenheimer (BO) approximation). An approach based on the analytical energy gradient calculated with respect to the Gaussian exponential parameters was employed. This led to a noticeable improvement of the previously determined variational upper bound to the nonrelativistic energy of Li(-). The Li energy obtained in the calculations matches those of the most accurate results obtained with Hylleraas functions. The finite-mass (non-BO) wave functions were used to calculate the alpha(2) relativistic corrections (alpha=1c). With those corrections and the alpha(3) and alpha(4) corrections taken from Pachucki and Komasa [J. Chem. Phys. 125, 204304 (2006)], the electron affinity (EA) of (7)Li was determined. It agrees very well with the most recent experimental EA.
显式相关高斯函数已被用于对(^7Li)和(^7Li^-)的基态进行非常精确的变分计算。计算中明确包含了核运动(即计算过程未假设玻恩 - 奥本海默(BO)近似)。采用了一种基于相对于高斯指数参数计算的解析能量梯度的方法。这使得先前确定的(Li^-)非相对论能量的变分上限有了显著提高。计算中得到的锂能量与使用海勒拉斯函数获得的最精确结果相匹配。使用有限质量(非BO)波函数来计算(\alpha^2)相对论修正((\alpha = \frac{1}{c}))。结合这些修正以及取自帕丘斯基和科马萨[《化学物理杂志》125, 204304 (2006)]的(\alpha^3)和(\alpha^4)修正,确定了(^7Li)的电子亲和能(EA)。它与最新的实验电子亲和能非常吻合。