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首页> 外文期刊>International Journal of Quantum Chemistry >Kernel energy method: Basis functions and quantum methods
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Kernel energy method: Basis functions and quantum methods

机译:核能方法:基函数和量子方法

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The kernel energy method (KEM) has been illustrated with peptides and has been shown to reduce the computational difficulty associated with obtaining ab initio quality quantum chemistry results for large biological compounds. In a recent paper, the method was illustrated by application to 15 different peptides, ranging in size from 4 to 19 amino acid residues, and was found to deliver accurate Hartree-Fock (HF) molecular energies within the model, using Slater-type orbital (STO)-3G basis functions. A question arises concerning whether the results obtained from the use of KEM are wholly dependent on the STO-3G basis functions that were employed, because of their relative simplicity, in the first applications. In the present work, it is shown that the accuracy of KEM does not depend on a particular choice of basis functions. This is done by calculating the ground-state energy of a representative peptide, ADPGV7B, containing seven amino acid residues, using seven different commonly employed bases function sets, ranging in size from small to medium to large. It is shown that the accuracy of the KEM does not vary in any systematic way with the size or mathematical completeness of the basis set used, and good accuracy is maintained over the entire variety of basis sets that have been tested. Both approximate HF and density functional theory (DFT) calculations are made. We conclude that the accuracy inherent in the KEM is not dependent on a particular choice of basis functions. The first application, to 15 different peptides mentioned above, employed only HF calculations. A second question that arises is whether the results obtained with the use of KEM will be accurate only within the HF approximation. Therefore, in the present work we also study whether KEM is applicable across a variety of quantum computational methods, characterized by differing levels of accuracy. The peptide, Zaib4, containing 74 atoms, was used to calculate its energy at seven different levels of accuracy. These include the semi-empirical methods, AM1 and PM5, a DFT B3LYP model, and ab initio HF, MP2, CID, and CCSD calculations. KEM was found to be widely applicable across the spectrum of quantum methods tested. (C) 2005 Wiley Periodicals, Inc.
机译:核能方法(KEM)已用肽进行了说明,并已显示出它可以减少与获得大型生物化合物的从头算质量量子化学结果相关的计算难度。在最近的一篇论文中,该方法通过应用于15种不同的肽(大小范围为4到19个氨基酸残基)进行了说明,并发现该方法使用Slater型轨道在模型内传递了准确的Hartree-Fock(HF)分子能量。 (STO)-3G基本功能。对于使用KEM所获得的结果是否由于其相对简单性而在最初的应用中使用的STO-3G基本功能是否产生问题,提出了一个问题。在目前的工作中,表明KEM的精度不取决于基函数的特定选择。这是通过使用七个不同的常用碱基功能集(大小从小到中到大)计算包含七个氨基酸残基的代表性肽ADPGV7B的基态能量来完成的。结果表明,KEM的准确性不会随所用基础集的大小或数学完整性而以任何系统的方式变化,并且在已测试的整个基础集上均保持了良好的准确性。进行了近似HF和密度泛函理论(DFT)的计算。我们得出的结论是,KEM中固有的精度不依赖于基函数的特定选择。对于上述15种不同的肽的第一个应用仅使用HF计算。出现的第二个问题是,使用KEM获得的结果是否仅在HF近似范围内才是准确的。因此,在本工作中,我们还研究了KEM是否适用于以不同精度级别为特征的各种量子计算方法。含有74个原子的Zaib4肽用于计算其在七个不同准确度水平上的能量。这些方法包括半经验方法,AM1和PM5,DFT B3LYP模型以及从头开始进行HF,MP2,CID和CCSD计算。发现KEM在所测试的所有量子方法领域中均具有广泛的适用性。 (C)2005 Wiley期刊公司

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