Centro de Bioinformática, Simulación y Modelado (CBSM), Facultad de Ingeniería, Universidad de Talca, Campus Lircay, Talca 3460000, Chile.
Instituto de Investigación Interdisciplinaria (I3), Universidad de Talca, Campus Lircay, Talca 3460000, Chile.
Phys Chem Chem Phys. 2023 Feb 22;25(8):6050-6059. doi: 10.1039/d2cp04684a.
The mechanistic paradigm in which the Schmittel cyclization transitions from one-step to stepwise has been investigated through the stabilization of a full hidden intermediate in the framework of the Diabatic Model of Intermediate Stabilization. Hidden intermediate activation was studied employing quasi-classical trajectories and the Electron Localization Function. The stabilization of hidden intermediates achieved by substituting enyne-allenes with cyano and nitro groups generates the appearance of a partially hidden and an explicit intermediate, leading to one-step asynchronous biradical and stepwise biradical/zwitterionic mechanisms, respectively. The mechanistic feature associated with the activation level of the hidden intermediate arises from the Thornton effect and non-RRKM dynamics, where in the case of the CN-substituted system, despite having a single transition state, 54% of the effective trajectories remain in the intermediate zone after 540 fs, indicating that a mixture of mechanisms is observed.
通过在介态稳定的离域模型框架内稳定完全隐藏的中间态,研究了 Schmittel 环化从一步到分步的机理范例。采用准经典轨迹和电子定域函数研究了隐藏中间态的激活。通过用氰基和硝基取代烯炔-allenes,可以稳定隐藏中间态,从而产生部分隐藏和显式中间态,分别导致一步异步双自由基和分步双自由基/两性离子机制。与隐藏中间态的激活水平相关的机理特征来自 Thornton 效应和非 RRKM 动力学,在 CN 取代体系的情况下,尽管存在单个过渡态,但在 540 fs 后仍有 54%的有效轨迹处于中间态区,表明观察到混合机制。