Department of Chemistry, University of Basel, 4003 Basel, Switzerland.
Department of Chemistry, University of North Texas, Denton, TX 76203, USA.
Molecules. 2021 Oct 10;26(20):6101. doi: 10.3390/molecules26206101.
The calculation of the heats of combustion ΔH° and formation ΔH° of organic molecules at standard conditions is presented using a commonly applicable computer algorithm based on the group-additivity method. This work is a continuation and extension of an earlier publication. The method rests on the complete breakdown of the molecules into their constituting atoms, these being further characterized by their immediate neighbor atoms. The group contributions are calculated by means of a fast Gauss-Seidel fitting calculus using the experimental data of 5030 molecules from literature. The applicability of this method has been tested by a subsequent ten-fold cross-validation procedure, which confirmed the extraordinary accuracy of the prediction of ΔH° with a correlation coefficient R and a cross-validated correlation coefficient Q of 1, a standard deviation σ of 18.12 kJ/mol, a cross-validated standard deviation S of 19.16 kJ/mol, and a mean absolute deviation of 0.4%. The heat of formation ΔH° has been calculated from ΔH° using the standard enthalpies of combustion for the elements, yielding a correlation coefficient R for ΔH° of 0.9979 and a corresponding standard deviation σ of 18.14 kJ/mol.
使用基于基团加和法的通用计算机算法,介绍了在标准条件下计算有机分子燃烧热ΔH°和生成热ΔH°的方法。这项工作是早期出版物的延续和扩展。该方法基于将分子完全分解为其组成原子,这些原子进一步通过其紧邻原子来表征。基团贡献通过使用文献中 5030 个分子的实验数据的快速高斯-赛德尔拟合算法来计算。通过后续的十重交叉验证程序测试了该方法的适用性,该程序确认了ΔH°预测的非凡准确性,相关系数 R 和交叉验证相关系数 Q 为 1,标准偏差σ为 18.12 kJ/mol,交叉验证标准偏差 S 为 19.16 kJ/mol,平均绝对偏差为 0.4%。使用元素的标准燃烧焓从ΔH°计算生成热ΔH°,得到ΔH°的相关系数 R 为 0.9979,相应的标准偏差σ为 18.14 kJ/mol。