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双环[6 + 4]/[4 + 6]过渡态与自由基途径竞争在环庚三烯二聚中的作用:热二聚体的动力学和实验特性。

Ambimodal Bispericyclic [6 + 4]/[4 + 6] Transition State Competes with Diradical Pathways in the Cycloheptatriene Dimerization: Dynamics and Experimental Characterization of Thermal Dimers.

机构信息

The College of Chemistry, Nankai University, Tianjin 300071, China.

Department of Chemistry, Aarhus University, Langelandsgade 140, Aarhus C DK-8000, Denmark.

出版信息

J Am Chem Soc. 2022 Dec 7;144(48):22251-22261. doi: 10.1021/jacs.2c10407. Epub 2022 Nov 28.

Abstract

The thermal dimerization of cycloheptatriene is predicted to occur by a concerted [6 + 4] cycloaddition an ambimodal [6 + 4]/[4 + 6] transition state (TS) and a competing stepwise diradical (6 + 2) cycloaddition; both dimers subsequently undergo intramolecular [4 + 2] cycloadditions to afford thermally stable tetracyclic products. The ambimodal TS is the 10π-electron version of the prototype bispericyclic dimerization of cyclopentadiene discovered by Caramella in 2002. Quantum mechanical studies using several common DFT functionals and post-HF methods, ωB97X-D, M06-2X, DLPNO-CCSD(T), NEVPT2, and PWPB95-D3(BJ), and quasiclassical molecular dynamics simulations provide details of bond timing and bifurcation pathways. By comparing the ambimodal [6 + 4]/[4 + 6] TS for cycloheptatriene dimerization with the ambimodal [4 + 2]/[2 + 4] TS of cyclopentadiene dimerization, we found that the high distortion energy in cycloheptatriene dimerization is the key to its relatively high energy barrier. The computational investigations were coupled with experimental studies of the cycloheptatriene dimerization, which resulted in the isolation of the two tetracyclic dimers. At lower temperature, the product from the predicted -[6 + 4]/[4 + 6] cycloaddition, followed by a subsequent intramolecular [4 + 2] cycloaddition, predominantly forms, while at higher temperature, the diradical (6 + 2) cycloadduct is the major product.

摘要

环庚三烯的热二聚预测通过协同 [6 + 4] 环加成发生,具有双通道 [6 + 4]/[4 + 6] 过渡态(TS)和竞争分步双自由基(6 + 2)环加成;两种二聚体随后都经历分子内 [4 + 2] 环加成,得到热稳定的四环产物。双通道 TS 是 2002 年 Caramella 发现的经典双环戊二烯二聚化的 10π 电子版本。使用几种常见的 DFT 泛函和后 HF 方法、ωB97X-D、M06-2X、DLPNO-CCSD(T)、NEVPT2 和 PWPB95-D3(BJ)以及准经典分子动力学模拟,对量子力学研究提供了键定时序和分叉途径的详细信息。通过比较环庚三烯二聚化的双通道 [6 + 4]/[4 + 6] TS 与环戊二烯二聚化的双通道 [4 + 2]/[2 + 4] TS,我们发现环庚三烯二聚化中的高畸变能是其相对高能垒的关键。计算研究与环庚三烯二聚化的实验研究相结合,导致两种四环二聚体的分离。在较低温度下,主要形成预测的 -[6 + 4]/[4 + 6] 环加成产物,随后进行后续的分子内 [4 + 2] 环加成,而在较高温度下,双自由基(6 + 2)环加成产物是主要产物。

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