O'Reilly Robert J, Karton Amir
School of Science and Technology, University of New England, Armidale, NSW, Australia.
Front Chem. 2023 Oct 3;11:1283418. doi: 10.3389/fchem.2023.1283418. eCollection 2023.
In this study, the gas-phase homolytic P-F and P-Cl bond dissociation energies (BDEs) of a set of thirty fluorophosphine (RRP-F) and thirty chlorophosphine-type (RRP-Cl) molecules have been obtained using the high-level W2 thermochemical protocol. For the RRP-F species, the P-F BDEs (at 298 K) differ by up to 117.0 kJ mol, with (HSi)P-F having the lowest BDE (439.5 kJ mol) and FP-F having the largest BDE (556.5 kJ mol). In the case of the chlorophosphine-type molecules, the difference in BDEs is considerably smaller (, 72.6 kJ mol), with (NC)P-Cl having the lowest P-Cl BDE (299.8 kJ mol) and (HO)P-Cl having the largest (372.4 kJ mol). We have further analyzed the effect of substituents in governing the P-F and P-Cl BDEs by considering the effect of substituents in the parent halogenated precursors (using molecule stabilization enthalpies) and the effect of substituents in the product radicals (using radical stabilization enthalpies). Finally, we have also assessed the performance of a wide range of DFT methods for their ability to compute the gas-phase P-F and P-Cl BDEs contained in this dataset. We find that, overall, the double hybrid functional DSD-PBEB95 offers the best performance for both bond types, with mean absolute deviations of just 2.1 (P-F BDEs) and 2.2 (P-Cl BDEs) kJ mol.
在本研究中,使用高水平的W2热化学方法获得了一组30个氟膦(RRP-F)分子和30个氯膦型(RRP-Cl)分子的气相均裂P-F和P-Cl键解离能(BDEs)。对于RRP-F物种,P-F键解离能(在298 K时)相差高达117.0 kJ/mol,其中(HSi)P-F的键解离能最低(439.5 kJ/mol),而FP-F的键解离能最高(556.5 kJ/mol)。对于氯膦型分子,键解离能的差异要小得多(,72.6 kJ/mol),其中(NC)P-Cl的P-Cl键解离能最低(299.8 kJ/mol),(HO)P-Cl的键解离能最高(372.4 kJ/mol)。我们通过考虑母体卤代前体中取代基的影响(使用分子稳定焓)和产物自由基中取代基的影响(使用自由基稳定焓),进一步分析了取代基对P-F和P-Cl键解离能的影响。最后,我们还评估了一系列密度泛函理论(DFT)方法计算该数据集中气相P-F和P-Cl键解离能时的性能。我们发现,总体而言,双杂化泛函DSD-PBEB95对这两种键型的表现最佳,平均绝对偏差仅为2.1(P-F键解离能)和2.2(P-Cl键解离能)kJ/mol。