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Cercosporin-Photocatalyzed [4+1]- and [4+2]-Annulations of Azoalkenes Under Mild Conditions
Published on: July 17, 2020
Modification of C^N cyclometalated ligands: theoretical design of structurally diverse Ir(III) complexes for
Feng-Yi Sun1, Xue Wei1, Wei-Bo Cui1
1Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, College of Chemistry, Jilin University, Changchun 130061, P. R. China. renam@jlu.edu.cn.
Abstract:
To develop novel photodynamic therapy (PDT) photosensitizers with high two-photon absorption cross-sections (δTPA) and long triplet-state lifetimes, and to provide clues for future practical PDT agents, we have designed a series of novel Ir(III) complexes by means of modification to the C^N ligand based on the experimentally synthesized high-performance photosensitizer [Ir(ppy)2(osip)](PF6). Subsequently, a comprehensive theoretical assessment was then conducted to systematically explore the impacts of C^N ligand modifications on the key characteristics of these photosensitizers. The results indicate that, compared to electron-donating substituents, introducing electron-withdrawing groups can effectively modulate the charge transfer types and significantly reduce the contribution of metal d-orbitals to the first excited singlet state S1, while effectively enhancing electron-hole overlap. Thus, with such modifications complexes 3-5 exhibit not only larger δTPA and stronger fluorescence emission intensities but also longer triplet excited-state lifetimes. Overall, molecule 4 demonstrates the most outstanding photosensitizing properties among them, with the highest δTPA (78 GM), a high intersystem crossing efficiency (90.8%), and a long triplet-state lifetime (151.8 μs).
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