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Comprehensive Benchmark of Association (Free) Energies of Realistic Host-Guest Complexes

机译:真实的主机-访客复合体的协会(免费)能源综合基准

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The S12L test set for supramolecular Gibbs free energies of association Delta G(a) (Grimme, S. Chem. Eur. J. 2012, 18, 9955-9964) is extended to 30 complexes (S3OL), featuring more diverse interaction motifs, anions, and higher charges (-1 up to +4) as well as larger systems with up to 200 atoms. Various typical noncovalent interactions like hydrogen and halogen bonding, pi-pi stacking, nonpolar dispersion, and CH-pi and cation dipolar interactions are represented by "real" complexes. The experimental Gibbs free energies of association (Delta G(a)(exp)) cover a wide range from -0.7 to -24.7 kcal mol(-1). In order to obtain a theoretical best estimate for Delta G(a), we test various dispersion corrected density functionals in combination with quadruple-zeta basis sets for calculating the association energies in the gas phase. Further, modern semiempirical methods are employed to obtain the thermostatistical corrections from energy to Gibbs free energy, and the COSMO-RS model with several parametrizations as well as the SMD model are used to include solvation contributions. We investigate the effect of including counterions for the charged systems (S30L-CI), which is found to overall improve the results. Our best method combination consists of PW6B9.5-D3 (for neutral and charged systems) or omega B97X-D3 (for systems with counterions) energies, HF-3c thermostatistical corrections, and Gibbs free energies of solvation obtained with the COSMO-RS 2012 parameters for nonpolar solvents and 2013-fine for water. This combination gives a mean absolute deviation for Delta G(a) of only 2.4 kcal mol(-1) (S30L) and 2.1 kcal mol(-1) (S30L-CI), with a mean deviation of almost zero compared to experiment. Regarding the relative Gibbs free energies of association for the 13 pairs of complexes which share the same host, the correct trend in binding affinities could be reproduced except for two cases. The MAD compared to experiment amounts to 1.2 kcal mol(-1), and the MD is almost zero. The best-estimate theoretical corrections are used to back-correct the experimental Delta G(a) values in order to get an empirical estimate for the "experimental", zero-point vibrational energy exclusive, gas phase binding energies. These are then utilized to benchmark the performance of various "low-cost" quantum chemical methods for noncovalent interactions in large systems. The performance of other common DFT methods as well as the use of semiempirical methods for structure optimizations is discussed.
机译:用于Delta G(a)缔合的超分子吉布斯自由能的S12L测试仪(Grimme,S.Chem.Eur.J.2012,18,9955-9964)扩展到30个复合物(S3OL),具有更多不同的相互作用基序,阴离子,较高的电荷(-1至+4)以及具有最多200个原子的较大系统。各种典型的非共价相互作用(例如氢键和卤素键,π-π堆积,非极性分散以及CH-π和阳离子偶极相互作用)由“真实”络合物表示。实验的吉布斯缔合自由能(Delta G(a)(exp))涵盖-0.7至-24.7 kcal mol(-1)的较宽范围。为了获得Delta G(a)的理论最佳估计值,我们结合四重Zeta基集测试了各种色散校正的密度泛函,以计算气相的缔合能。此外,现代半经验方法被用于获得从能量到吉布斯自由能的热统计校正,具有多个参数化的COSMO-RS模型以及SMD模型被用于包含溶剂化作用。我们研究了对带电系统(S30L-CI)包括抗衡离子的效果,发现该方法总体上可以改善结果。我们的最佳方法组合包括COSMO-RS 2012获得的PW6B9.5-D3(对于中性和带电系统)或ΩB97X-D3(对于带有抗衡离子的系统)能量,HF-3c热统计校正和吉布斯溶剂化自由能非极性溶剂的参数,2013年精细的水。这种组合给出的Delta G(a)的平均绝对偏差仅为2.4 kcal mol(-1)(S30L)和2.1 kcal mol(-1)(S30L-CI),与实验相比,其平均偏差几乎为零。关于具有相同主体的13对配合物的相对吉布斯缔合自由能,除了两种情况外,可以再现结合亲和力的正确趋势。与实验相比,MAD为1.2 kcal mol(-1),MD几乎为零。最佳估计的理论校正用于对实验Delta G(a)值进行反校正,以便获得“实验性”,零点振动能量专有,气相结合能的经验估计。然后将这些用于基准用于大型系统中非共价相互作用的各种“低成本”量子化学方法的性能。讨论了其他常见DFT方法的性能以及使用半经验方法进行结构优化的方法。

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