Lu Shih-I
Department of Applied Chemistry, Fooyin University, 151 Chinhsueh Road, Ta-Liao Hsiang, Kaohsiung Hsien 831, Taiwan.
J Chem Phys. 2004 Dec 1;121(21):10365-9. doi: 10.1063/1.1809599.
For a test set of 17 first-row small molecules, the equilibrium structures are calculated with Ornstein-Uhlenbeck diffusion quantum Monte Carlo simulations guiding by trial wave functions constructed from floating spherical Gaussian orbitals and spherical Gaussian geminals. To measure performance of the Monte Carlo calculations, the mean deviation, the mean absolute deviation, the maximum absolute deviation, and the standard deviation of Monte Carlo calculated equilibrium structures with respect to empirical equilibrium structures are given. This approach is found to yield results having a uniformly high quality, being consistent with empirical equilibrium structures and surpassing calculated values from the coupled cluster model with single, double, and noniterative triple excitations [CCSD(T)] with the basis sets of cc-pCVQZ and cc-pVQZ. The nonrelativistic equilibrium atomization energies are also presented to assess performance of the calculated methods. The mean absolute deviations regarding experimental atomization energy are 0.16 and 0.21 kcal/mol for the Monte Carlo and CCSD(T)/cc-pCV(56)Z calculations, respectively.
对于一组包含17个第一行小分子的测试集,利用由浮动球形高斯轨道和球形高斯双电子基函数构建的试探波函数引导的奥恩斯坦-乌伦贝克扩散量子蒙特卡罗模拟来计算平衡结构。为了衡量蒙特卡罗计算的性能,给出了蒙特卡罗计算的平衡结构相对于经验平衡结构的平均偏差、平均绝对偏差、最大绝对偏差和标准偏差。结果发现,这种方法产生的结果具有一致的高质量,与经验平衡结构一致,并且超过了使用cc-pCVQZ和cc-pVQZ基组的单、双和非迭代三激发耦合簇模型[CCSD(T)]的计算值。还给出了非相对论平衡原子化能,以评估计算方法的性能。蒙特卡罗计算和CCSD(T)/cc-pCV(56)Z计算相对于实验原子化能的平均绝对偏差分别为0.16和0.21 kcal/mol。