Liu Min Hsien, Chen Cheng
Department of Applied Chemistry, Chung Cheng Institute of Technology, National Defense University, Ta-Hsi, Taoyuan, 33509 Taiwan, Republic of China.
J Comput Chem. 2006 Apr 15;27(5):537-44. doi: 10.1002/jcc.20353.
A test set of 65 hydrocarbons was examined to elucidate theoretically their thermodynamic properties by performing the density-functional theory (DFT) and ab initio calculations. All the calculated data were modified using a three-parameter calibration equation and the least-squares approach, to determine accurately enthalpies of formation (DeltaH(f)), entropies (S), and heat capacities (C(p)). Calculation results demonstrated that the atomization energies of all compounds exhibited an average absolute relative error ranging between 0.11- 0.13%, and an DeltaH(f) of formation with a mean absolute absolute error (M.|A.E.|) ranging from only 5.7-6.8 kJ/mol (1.3-1.6 kcal/mol) (i.e., those results correlated with those of Dr. Herndon's 1.1 kcal/mol). Additionally, the entropy ranged from 3.5-4.2 J/mol K (0.8-1.0 cal/mol K) M.|A.E.|; a heat capacity between 2.3-2.9 J/mol K (0.5-0.7 cal/mol K) M.|A.E.| was obtained as well.
通过进行密度泛函理论(DFT)和从头计算,对一组65种碳氢化合物的测试集进行了研究,以从理论上阐明它们的热力学性质。所有计算数据都使用三参数校准方程和最小二乘法进行修正,以准确确定生成焓(ΔH(f))、熵(S)和热容(C(p))。计算结果表明,所有化合物的原子化能的平均绝对相对误差在0.11 - 0.13%之间,生成焓的平均绝对误差(M.A.E.)仅在5.7 - 6.8 kJ/mol(1.3 - 1.6 kcal/mol)范围内(即这些结果与赫恩登博士的1.1 kcal/mol结果相关)。此外,熵的平均绝对误差范围为3.5 - 4.2 J/mol K(0.8 - 1.0 cal/mol K);同时还获得了热容的平均绝对误差在2.3 - 2.9 J/mol K(0.5 - 0.7 cal/mol K)之间。