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The application of midbond basis sets in efficient and accurate ab initio calculations on electron-deficient systems.

机译:中键基集在缺电子系统中有效而准确的从头算中的应用。

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Ab initio chemistry has shown great promise in reproducing experimental results and in its predictive power. The many complicated computational models and methods seem impenetrable to an inexperienced scientist, and the reliability of the results is not easily interpreted.; The application of midbond orbitals is used to determine a general method for use in calculating weak intermolecular interactions, especially those involving electron-deficient systems. Using the criteria of consistency, flexibility, accuracy and efficiency we propose a supermolecular method of calculation using the full counterpoise (CP) method of Boys and Bernardi, coupled with Møller-Plesset (MP) perturbation theory as an efficient electron-correlative method. We also advocate the use of the highly efficient and reliable correlation-consistent polarized valence basis sets of Dunning. To these basis sets, we add a general set of midbond orbitals and demonstrate greatly enhanced efficiency in the calculation.; The H2-H2 dimer is taken as a benchmark test case for our method, and details of the computation are elaborated. Our method reproduces with great accuracy the dissociation energies of other previous theoretical studies. The added efficiency of extending the basis sets with conventional means is compared with the performance of our midbond-extended basis sets. The improvement found with midbond functions is notably superior in every case tested.; Finally, a novel application of midbond functions to the BH5 complex is presented. The system is an unusual van der Waals complex. The interaction potential curves are presented for several standard basis sets and midbond-enhanced basis sets, as well as for two popular, alternative correlation methods. We report that MP theory appears to be superior to coupled-cluster (CC) in speed, while it is more stable than B3LYP, a widely-used density functional theory (DFT). Application of our general method yields excellent results for the midbond basis sets. Again they prove superior to conventional extended basis sets. Based on these results, we recommend our general approach as a highly efficient, accurate method for calculating weakly interacting systems.
机译:从头算化学在再现实验结果及其预测能力方面显示出巨大的希望。对于一个没有经验的科学家来说,许多复杂的计算模型和方法似乎是无法理解的,并且结果的可靠性也不容易解释。中键轨道的应用被用来确定用于计算弱分子间相互作用的通用方法,特别是那些涉及缺电子系统的相互作用。使用一致性,灵活性,准确性和效率的标准,我们提出了一种使用Boys and Bernardi的完全平衡法(CP)方法以及Møller-Plesset(MP)扰动理论作为一种有效的电子相关方法的超分子计算方法。我们还提倡使用Dunning的高效且可靠的相关一致的极化价基集。在这些基础集上,我们添加了一组中键轨道,并证明了计算效率的大大提高。 H 2 -H 2 二聚体被用作我们方法的基准测试用例,并详细说明了计算方法。我们的方法非常精确地再现了其他先前理论研究的解离能。用常规方法扩展基础集的附加效率与中间键扩展基础集的性能进行了比较。在每种测试情况下,中间键功能的改进都特别出色。最后,提出了中键功能在BH 5 复合物中的新应用。该系统是一个不寻常的范德华复杂系统。给出了几种标准基础集和中键增强基础集以及两种流行的替代相关方法的相互作用势曲线。我们报告说,MP理论在速度上似乎优于耦合簇(CC),但它比广泛使用的密度泛函理论(DFT)B3LYP更稳定。我们的通用方法的应用对于中键基集产生了极好的结果。再次证明它们优于常规扩展基础集。基于这些结果,我们建议采用通用方法,将其作为计算弱相互作用系统的高效,准确方法。

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