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使用配位聚合物实现可见光和微波介导的单线态氧的快速捕获与释放

Visible Light and Microwave-Mediated Rapid Trapping and Release of Singlet Oxygen Using a Coordination Polymer.

作者信息

Li Qiu-Yi, Deng Yun-Hu, Cao Chen, Hong Yu-Xuan, Xue Xin-Ran, Zhang Min-Jie, Ge Yu, Abrahams Brendan F, Lang Jian-Ping

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, Jiangsu, P. R. China.

State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, Shanghai, 200032, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2023 Aug 14;62(33):e202306719. doi: 10.1002/anie.202306719. Epub 2023 Jul 6.

Abstract

Due to its high reactivity and oxidative strength, singlet oxygen ( O ) is used in a variety of fields including organic synthesis, biomedicine, photodynamic therapy and materials science. Despite its importance, the controlled trapping and release of O is extremely challenging. Herein, we describe a one-dimensional coordination polymer, CP1, which upon irradiation with visible light, transforms O (triplet oxygen) to O . CP1 consists of Cd centers bridged by 9,10-bis((E)-2-(pyridin-4-yl)vinyl)anthracene ligands which undergo a [4+2] cycloaddition reaction with O , resulting in the generation of CP1- O . Using microwave irradiation, CP1- O displays efficient release of O , over a period of 30 s. In addition, CP1 exhibits enhanced fluorescence and has an oxygen detection limit of 97.4 ppm. Theoretical calculations reveal that the fluorescence behaviour is dominated by unique through-space conjugation. In addition to describing a highly efficient approach for the trapping and controlled release of O , using coordination polymers, this work also provides encouragement for the development of efficient fluorescent oxygen sensors.

摘要

由于单线态氧(O)具有高反应活性和氧化强度,它被应用于包括有机合成、生物医学、光动力疗法和材料科学在内的多个领域。尽管其很重要,但对单线态氧(O)进行可控的捕获和释放极具挑战性。在此,我们描述了一种一维配位聚合物CP1,它在可见光照射下,能将三线态氧(O)转化为单线态氧(O)。CP1由通过9,10-双((E)-2-(吡啶-4-基)乙烯基)蒽配体桥连的镉中心组成,这些配体与三线态氧(O)发生[4+2]环加成反应,生成CP1-O。使用微波辐射,CP1-O在30秒的时间内展示出高效的单线态氧(O)释放。此外,CP1表现出增强的荧光,其氧检测限为97.4 ppm。理论计算表明,荧光行为由独特的空间共轭主导。除了描述一种使用配位聚合物捕获和可控释放单线态氧(O)的高效方法外,这项工作还为开发高效的荧光氧传感器提供了助力。

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