Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, School of Chemistry and Molecular Engineering , East China University of Science & Technology , 130 Meilong Road , Shanghai 200237 , China.
Department of Chemistry and Spectroscopy Laboratory for Functional π-Electronic Systems , Yonsei University , Seoul 03722 , Korea.
J Am Chem Soc. 2019 Apr 3;141(13):5294-5302. doi: 10.1021/jacs.8b13148. Epub 2019 Mar 19.
Expanded porphyrins have been attracting increasing attention owing to their unique optical and electrochemical properties as well as switchable aromaticity. Toward material applications, regioselective functionalization of the expanded porphyrins at their periphery is indeed challenging due to the presence of multiple reactive sites. Herein, a set of regioselective halogenated isomers (L5-Br-A/B/C) of neo-confused isosmaragdyrin (L5) are synthesized by a combination of the halogenation reaction of L5 and sequential macrocycle-to-macrocycle transformation reactions of its halogenated isomers. On this basis, the regioselectively functionalized isosmaragdyrins are utilized as building blocks for constructing multichromophoric porphyrinoids, specifically, heterodyads L5-ZnP-A/B/C, in which a common zinc porphyrin is linked at three different pyrrolic positions of isosmaragdyrins, respectively, by Sonogashira coupling reactions. The highly efficient energy cascade from porphyrin to isosmaragdyrin is elucidated using steady-state/time-resolved spectroscopies and theoretical calculations. Notably, the energy transfer processes from the porphyrin to the isosmaragdyrin moieties as well as the excitation energy transfer rates in L5-ZnP-A/B/C are highly dependent on the linking sites by through-bond and Förster-type resonance energy transfer mechanisms. The site-selective functionalization and subsequent construction of a set of heterodyads of the expanded porphyrinoid would provide opportunities for developing new materials for optoelectronic applications.
扩展卟啉由于其独特的光学和电化学性质以及可切换的芳香性而引起了越来越多的关注。对于材料应用而言,由于存在多个反应性位点,因此在其外围对扩展卟啉进行区域选择性官能化确实具有挑战性。在此,通过 L5 的卤化反应和其卤代异构体的顺序大环至大环转化反应的组合,合成了一组区域选择性卤代异构体(L5-Br-A/B/C)的 neo-confused 异蓝紫质(L5)。在此基础上,将区域选择性官能化的异蓝紫质用作构建多发色团卟啉的构建块,具体为 L5-ZnP-A/B/C 杂二聚体,其中通过 Sonogashira 偶联反应,将一个常见的锌卟啉分别连接到异蓝紫质的三个不同吡咯位置。通过稳态/时间分辨光谱和理论计算阐明了从卟啉到异蓝紫质的高效能量级联。值得注意的是,从卟啉到异蓝紫质部分的能量转移过程以及在 L5-ZnP-A/B/C 中的激发能量转移速率高度依赖于通过键和 Förster 型共振能量转移机制的连接位点。扩展卟啉的位点选择性官能化和随后构建的一组杂二聚体将为开发用于光电应用的新材料提供机会。