Calogero Francesco, Wilczek Leonie, Pinosa Emanuele, Gualandi Andrea, Dorta Romano, Herrera Alberto, Dai Yasi, Rossignol Arthur, Negri Fabrizia, Ziani Zakaria, Fermi Andrea, Ceroni Paola, Cozzi Pier Giorgio
Dipartimento di Chimica "Giacomo Ciamician" Alma Mater Studiorum-, Università di Bologna, Via Gobetti 85, 40129, Bologna, Italy.
Center for Chemical Catalysis-C3 Alma Mater Studiorum-, Università di Bologna, Via Gobetti 85, 40129, Bologna, Italy.
Angew Chem Int Ed Engl. 2024 Oct 24;63(44):e202411074. doi: 10.1002/anie.202411074. Epub 2024 Sep 17.
Excited states of radical anions derived from the photoreduction of stable organic molecules are suggested to serve as potent reductants. However, excited states of these species are too short-lived to allow bimolecular quenching processes. Recently, the singlet excited state of Meisenheimer complexes, which possess a long-lived excited state, was identified as the competent species for the reduction of challenging organic substrates (-2.63 V vs. SCE, saturated calomel electrode). To produce reasonably stable and simply accessible different Meisenheimer complexes, the addition of nBuLi to readily available aromatic heterocycles was investigated, and the photoreactivity of the generated species was studied. In this paper, we present the straightforward preparation of a family of powerful photoreductants (*E<-3 V vs. SCE in their excited states, determined by DFT and time-dependent TD-DFT calculations; DFT, density functional theory) that can induce dehalogenation of electron-rich aryl chlorides and to form C-C bond through radical cyclization. Photophysical analyses and computational studies in combination with experimental mechanistic investigations demonstrate the ability of the adduct to act as a strong electron donor under visible light irradiation.
源自稳定有机分子光还原的自由基阴离子的激发态被认为是强还原剂。然而,这些物种的激发态寿命太短,无法进行双分子猝灭过程。最近,具有长寿命激发态的迈森海默络合物的单重激发态被确定为还原具有挑战性的有机底物的有效物种(相对于饱和甘汞电极(SCE)为-2.63 V)。为了制备相当稳定且易于获得的不同迈森海默络合物,研究了将正丁基锂添加到容易获得的芳族杂环中,并研究了所生成物种的光反应性。在本文中,我们展示了一类强大的光还原剂的直接制备方法(通过密度泛函理论(DFT)和含时密度泛函理论(TD-DFT)计算确定,其激发态相对于SCE的*E<-3 V;DFT,密度泛函理论),该光还原剂可诱导富电子芳基氯化物的脱卤反应,并通过自由基环化形成碳-碳键。光物理分析、计算研究以及实验机理研究相结合,证明了该加合物在可见光照射下作为强电子供体的能力。