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首页> 外文期刊>Journal of chemical theory and computation: JCTC >The Accuracy of Density Functional Theory in the Description of Cation -π and π-Hydrogen Bond Interactions
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The Accuracy of Density Functional Theory in the Description of Cation -π and π-Hydrogen Bond Interactions

机译:阳离子-π和π-氢键相互作用描述中的密度泛函理论的准确性

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Cation-π and π-hydrogen bond interactions are ubiquitous in protein folding, molecular recognition, and ligand-receptor associations. As such systems are routinely studied at the DFT level, it becomes essential to understand the underlying accuracy of the plethora of density functionals currently available for the description of these interactions. For that purpose, we carried out theoretical calculations on two small model systems (benzene-Na~+ and benzene-H2O) that represent a paradigm for those intermolecular interactions and systematically tested 46 density fiinctionals against the results of high-level postHF methods, ranging from MP2 to extrapolated CCSD(T)/CBS. A total of 13 basis sets were also tested to examine the convergence of the interaction energy with basis set size. The convergence was surprisingly fast, with deviations below 0.2 kcal/mol for double-π polarized basis sets with difluse functions. Concerning functional benchmarking, the Truhlar group functionals were particularly well suited for the description of the π-hydrogen bond interactions. In the case of cation-π interactions, there was not a clear correlation between accuracy and functional sophistication. Despite the large number of functionals predicting interaction energies within chemical accuracy (five for π-hydrogen bond and 20 for cation-π interactions), not a single functional has shown chemical accuracy in both cases. Moreover, if we calculate the average error for these two interactions, only two density functionals resulted in an average error below 1.0 kcal/mol (M06 and HCTH, with average errors of 0.6 and 0.8 kcal/mol). The obtained results serve as a guide for future computer simulations on this kind of system.
机译:阳离子-π和π-氢键相互作用在蛋白质折叠,分子识别和配体-受体缔合中普遍存在。由于此类系统是在DFT级别上进行常规研究的,因此了解当前可用于描述这些相互作用的众多密度泛函的基本准确性至关重要。为此,我们在两个小模型系统(苯-Na〜+和苯-H2O)上进行了理论计算,这些系统代表了这些分子间相互作用的范式,并针对高级后HF方法的结果,系统地测试了46个密度函数从MP2到外推CCSD(T)/ CBS。还测试了总共13个基础集,以检查交互能量与基础集大小的收敛性。收敛速度出乎意料地快,对于具有difluse函数的双π极化基集,偏差低于0.2 kcal / mol。关于功能基准测试,Truhlar基团的功能特别适合描述π-氢键相互作用。在阳离子-π相互作用的情况下,准确度和功能复杂性之间没有明显的相关性。尽管有大量功能预测化学能内的相互作用能(π-氢键为5个,阳离子-π相互作用为20个),但在两种情况下都没有一个功能显示化学精度。此外,如果我们计算这两个相互作用的平均误差,则只有两个密度泛函会导致平均误差低于1.0 kcal / mol(M06和HCTH,平均误差分别为0.6和0.8 kcal / mol)。获得的结果可为将来在这种系统上进行计算机仿真提供指导。

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