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首页> 外文期刊>International Journal of Quantum Chemistry >REVISITING THE POTENTIAL ENERGY SURFACE FOR [H3N-CENTER-DOT-CENTER-DOT-CENTER-DOT-HCL] - AN AB INITIO AND DENSITY FUNCTIONAL THEORY INVESTIGATION
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REVISITING THE POTENTIAL ENERGY SURFACE FOR [H3N-CENTER-DOT-CENTER-DOT-CENTER-DOT-HCL] - AN AB INITIO AND DENSITY FUNCTIONAL THEORY INVESTIGATION

机译:复习[H3N-中心-点-中心-点-中心-点-HCL]的势能面-从头开始进行密度函数理论研究

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Theoretical calculations of the potential energy surface (PES) for the [NH3 + HCl] system are presented using several standard ab initio methods such as Hartree-Fock (HF), second-order Moller-Plesset perturbation theory (MP2), coupled cluster (CC), complete active space self-consistent-field (CASSCF), density functional theory (DFT), and less traditional ab initio approaches such as Dirac-Fock four-components and the use of effective Hamiltonian techniques, such as the recently proposed K functional. All calculations predict a single minimum for the complex, corresponding to a hydrogen-bonded structure, confirming early studies. The dynamical and nondynamical contributions to the correlation energy are discussed for different cuts of the PES, involving different N-Cl distances. The complex has also been characterized by performing a full geometry optimization within the HF and DFT schemes; with the latter we have performed also the vibrational analysis. The predicted binding energies and infrared (IR) spectrum are compared with other theoretical and experimental results. For the gas phase, we propose a binding energy of -5.3 +/- 0.5 kcal/mol, thus revising the experimental value of -8.0 +/- 2.8 kcal/mol; for the minimum, the predicted N-H and H-Cl distances are 5.91 +/- 0.05 and 2.46 +/- 0.05 a.u., respectively. When the computation is done with approximate inclusion of solvent effects (Onsager reaction field), the minimum is shifted and it corresponds to the ion pair NH4+. Cl- structure, similar to Mulliken's outer complex. Since the first ab initio computation for the NH4Cl complex is the pioneer work in 1967 by E. Clementi, the present work provides us with an opportunity to comment on some aspects of the evolution in computational chemistry, particularly for energy determinations. We have concluded our comments with the invitation to use four-components Fock-Dirac for molecules both with high and low Z atoms, rather than the traditional Hartree-Fock and related methods;ln other words, we are of the opinion that the time is ready in quantum chemistry to switch from the Schrodinger to the Dirac representation, due to new developments in computer hardware and software. In addition, the use of effective Hamiltonians, like the recently proposed ''K functional,'' seems to deserve attention, because of their computational simplicity and physical reliability in predicting correlation corrections. (C) 1996 John Wiley & Sons, Inc. [References: 64]
机译:[NH3 + HCl]系统的势能面(PES)的理论计算使用几种标准的从头算方法进行了介绍,例如Hartree-Fock(HF),二阶Moller-Plesset微扰理论(MP2),耦合簇( CC),完整的主动空间自洽场(CASSCF),密度泛函理论(DFT)和不太传统的从头算方法,例如Dirac-Fock四分量法,以及使用有效的哈密顿技术,例如最近提出的K功能。所有计算都预测了该配合物的一个最小值,与氢键结构相对应,从而证实了早期研究。讨论了PES的不同切割(涉及不同的N-Cl距离)对相关能量的动力学和非动力学贡献。该复合体的特征还在于在HF和DFT方案中执行了完整的几何优化。对于后者,我们还进行了振动分析。将预测的结合能和红外光谱与其他理论和实验结果进行了比较。对于气相,我们建议结合能为-5.3 +/- 0.5 kcal / mol,因此将实验值修改为-8.0 +/- 2.8 kcal / mol;对于最小值,预测的N-H和H-Cl距离分别为5.91 +/- 0.05和2.46 +/- 0.05 a.u.。当计算完成时大约包含溶剂效应(Onsager反应场)时,最小值发生了变化,它对应于离子对NH4 +。 Cl-结构,类似于Mulliken的外部复合物。由于NH4Cl配合物的首次从头算是E. Clementi在1967年的开创性工作,所以本工作为我们提供了一个机会来评论计算化学发展的某些方面,特别是对于能量测定。结束语时,我们提出了对高Z原子和低Z原子的分子使用四组分Fock-Dirac的建议,而不是传统的Hartree-Fock及其相关方法;换句话说,我们认为时间是由于计算机硬件和软件的新发展,量子化学已准备好从Schrodinger转换为Dirac表示。此外,像最近提出的“ K函数”一样,使用有效的哈密顿量似乎值得关注,因为它们在预测相关校正时具有计算简单性和物理可靠性。 (C)1996 John Wiley&Sons,Inc. [参考:64]

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