Institut de Química Computacional i Catàlisi (IQCC) and Departament de Química, Universitat de Girona, c/Maria Aurèlia Capmany 6, 17003 Girona, Spain.
Phys Chem Chem Phys. 2018 May 3;20(17):11577-11585. doi: 10.1039/c7cp07965f.
Controlling the regioselectivity in the exohedral functionalization of fullerenes and endohedral metallofullerenes is essential to produce specific desired fullerene derivatives. In this work, using density functional theory (DFT) calculations, we show that the regioselectivity of the Diels-Alder (DA) cycloaddition of cyclopentadiene to 2S+1C60 changes from the usual [6,6] addition in the singlet ground state to the [5,6] attack in high spin states of C60. Changes in the aromaticity of the five- and six-membered rings when going from singlet to high spin C60 provide a rationale to understand this regioselectivity change. Experimentally, however, we find that the DA cycloaddition of isoindene to triplet C60 yields the usual [6,6] adduct. Further DFT calculations and computational analysis give an explanation to this unanticipated experimental result by showing the presence of an intersystem crossing close to the formed triplet biradical intermediate.
控制富勒烯和金属富勒烯的外壳官能化的区域选择性对于生产特定的所需富勒烯衍生物至关重要。在这项工作中,我们使用密度泛函理论(DFT)计算表明,环戊二烯与 2S+1C60 的 Diels-Alder(DA)环加成的区域选择性从单重基态下通常的[6,6]加成转变为 C60 的高自旋态下的[5,6]进攻。从单重态到高自旋 C60 时五元环和六元环芳香性的变化为理解这种区域选择性变化提供了依据。然而,实验上我们发现异吲哚与三重态 C60 的 DA 环加成生成通常的[6,6]加合物。进一步的 DFT 计算和计算分析表明,存在与形成的三重态自由基中间体接近的系间窜越,从而对这个出乎意料的实验结果给出了解释。