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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Anchoring the Gas-Phase Acidity Scale from Hydrogen Sulfide to Pyrrole. Experimental Bond Dissociation Energies of Nitromethane, Ethanethiol, and Cyclopentadiene
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Anchoring the Gas-Phase Acidity Scale from Hydrogen Sulfide to Pyrrole. Experimental Bond Dissociation Energies of Nitromethane, Ethanethiol, and Cyclopentadiene

机译:将气相酸度标度从硫化氢固定为吡咯。硝基甲烷,乙硫醇和环戊二烯的实验键解离能

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摘要

A meta-analysis of experimental information from a variety of sources is combined with statistical thermodynamics calculations to refine the gas-phase acidity scale from hydrogen sulfide to pyrrole. The absolute acidities of hydrogen sulfide, methanethiol, and pyrrole are evaluated from literature R-H bond energies and radical electron affinities to anchor the scale, Relative acidities from proton-transfer equilibrium experiments are used in a local therrnochemical network optimized by least-squares analysis to obtain absolute acidities of 14 additional acids in the region. Thermal enthalpy and entropy corrections are applied using molecular parameters from density functional theory, with explicit calculation of hindered rotor energy levels for torsional modes. The analysis reduces the uncertainties of the absolute acidities of the 14 acids to within +/- 1.2 to +/- 3.3 kJ/mol, expressed as estimates of the 95% confidence level. The experimental gas-phase acidities are compared with calculations, with generally good agreement. For nitromethane, ethanethiol, and cyclopentadiene, the refined acidities can be combined with electron affinities of the corresponding radicals from photoelectron spectroscopy to obtain improved values of the C-H or S-H bond dissociation energies, yielding D-298(H-CH2NO2) = 423.5 +/- 2.2 kJ mol(-1), D-298(C2H5S-H) = 364.7 +/- 2.2 kJ mol(-1), and D-298(CsHs-H) = 347.4 +/- 2.2 kJ mol(-1). These values represent the best-available experimental bond dissociation energies for these species.
机译:对来自各种来源的实验信息进行的荟萃分析与统计热力学计算相结合,以完善从硫化氢到吡咯的气相酸度标度。通过文献RH键能和自由基电子亲和力评估硫化氢,甲硫醇和吡咯的绝对酸度,以固定水垢。通过最小二乘分析优化的质子传递平衡实验中的相对酸度用于局部热化学网络,以获得该地区另外14种酸的绝对酸度。热焓和熵校正使用密度泛函理论的分子参数进行,并明确计算了扭转模式下受阻转子能级。该分析将14种酸的绝对酸度的不确定性降低到+/- 1.2至+/- 3.3 kJ / mol之内,以95%置信度的估计值表示。将实验气相酸度与计算结果进行比较,总体吻合良好。对于硝基甲烷,乙硫醇和环戊二烯,可以将精制的酸度与光电子能谱中相应基团的电子亲和力相结合,以获得更高的CH或SH键离解能值,得到D-298(H-CH2NO2)= 423.5 + / -2.2 kJ mol(-1),D-298(C2H5S-H)= 364.7 +/- 2.2 kJ mol(-1)和D-298(CsHs-H)= 347.4 +/- 2.2 kJ mol(-1 )。这些值代表了这些物种的最佳可用实验键解离能。

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