Department of Organic Chemistry, Centre of Molecular and Macromolecular Studies, Polish Academy of Sciences, 90-363 Lodz, 112 Sienkiewicza, Poland.
Department of Structural Chemistry, Centre of Molecular and Macromolecular Studies, Polish Academy of Sciences, 90-363 Lodz, 112 Sienkiewicza, Poland.
Molecules. 2020 Mar 20;25(6):1428. doi: 10.3390/molecules25061428.
The chloride-chloride exchange reaction in arenesulfonyl chlorides was investigated experimentally and theoretically by density functional theory (DFT) calculations. The second order rate constants and activation parameters of this identity reaction were determined for 22 variously substituted arenesulfonyl chlorides using radio-labeled EtNCl. The chloride exchange rates of 11 sulfonyl chlorides bearing -and -substituents (σ constants from -0.66 to +0.43) in the aromatic ring followed the Hammett equation with a ρ-value of +2.02. The mono- and di--alkyl substituted sulfonyl chlorides exhibit an enhanced reactivity although both inductive and steric effects lower the reaction rate. The DFT calculations of their structures together with X-ray data showed that an increased reactivity is mainly due to a peculiar, rigid, strongly compressed and sterically congested structure. The DFT studies of the title reaction revealed that it proceeds via a single transition state according to the S2 mechanism. The analogous fluoride exchange reaction occurs according to the addition-elimination mechanism (A-E) and formation of a difluorosulfurandioxide intermediate. The reliability of the calculations performed was supported by the fact that the calculated relative rate constants and activation parameters correlate well with the experimental kinetic data.
芳基磺酰氯中的氯-氯交换反应通过密度泛函理论(DFT)计算进行了实验和理论研究。使用放射性标记的 EtNCl 测定了 22 种不同取代的芳基磺酰氯的该同位数反应的二级速率常数和活化参数。带有 -和 -取代基(芳环中的 σ 常数从-0.66 到+0.43)的 11 种磺酰氯的氯交换速率符合 Hammett 方程,ρ 值为+2.02。尽管诱导和空间位阻效应均降低了反应速率,但单取代和二取代的磺酰氯的反应性增强。它们的结构的 DFT 计算以及 X 射线数据表明,反应性的提高主要是由于其具有独特的、刚性的、强烈压缩的和空间拥挤的结构。该标题反应的 DFT 研究表明,它通过 S2 机制按照单过渡态进行。类似的氟交换反应根据加成-消除机制(A-E)进行,形成二氟亚磺酰二氧中间体。计算中使用的相对速率常数和活化参数与实验动力学数据很好地相关,这一事实支持了所进行的计算的可靠性。