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Rotaxane-Branched Dendrimers with Enhanced Photosensitization

机译:转甲烷分支的树枝状大分子,具有增强的光敏化

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摘要

During the past few decades, fabrication of functional rotaxane-branched dendrimers has become one of the most attractive yet challenging topics within supramolecular chemistry and materials science. Herein, we present the successful fabrication of a family of new rotaxane-branched dendrimers containing up to 21 platinum atoms and 42 photosensitizer moieties through an efficient and controllable divergent approach. Notably, the photosensitization efficiencies of these rotaxane-branched dendrimers gradually increased with the increase of dendrimer generation. For example, third-generation rotaxane-branched dendrimer PG3 revealed 13.3-fold higher ~1O_2 generation efficiency than its corresponding monomer AN. The enhanced ~1O_2 generation efficiency was attributed to the enhancement of intersystem crossing (ISC) through the simple and efficient incorporation of multiple heavy atoms and photosensitizer moieties on the axles and wheels of the rotaxane units, respectively, which has been validated by UV- visible and fluorescence techniques, time-dependent density functional theory calculations, photolysis model reactions, and apparent activation energy calculations. Therefore, we develop a new promising platform of rotaxane-branched dendrimers for the preparation of effective photosensitizers.
机译:在过去的几十年中,功能性旋石刀支化的树枝状大分子的制作已成为超分子化学和材料科学中最具吸引力但具有挑战性的主题之一。在此,我们通过有效可控的发散方法呈现了含有多达21个铂原子和42个光敏剂部分的新的旋石刀支化的树枝状过度的家族的成功制造。值得注意的是,随着树枝状器产生的增加,这些旋石刀支化的树枝状体的光敏效率逐渐增加。例如,第三代轮烷分支树枝状聚合物PG3显示比其相应单体A的13.3倍〜1O_2代效率。增强的〜1O_2代效率归因于分别通过旋塞内单元的轴和轮子上的多重和光敏剂部分的简单有效地掺入旋刀单元的轴和轮子的轴和光敏剂部分的增强。通过UV-可见验证和荧光技术,时间依赖性密度官能理论计算,光解模型反应和表观激活能量计算。因此,我们开发了一种用于制备有效光敏剂的旋刀支化树枝状大分子的新有希望的平台。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第39期|16748-16756|共9页
  • 作者单位

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China;

    State Key Laboratory of Precision Spectroscopy School of Physics and Electronic Science East China Normal University Shanghai 200241 P.R. China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China College of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518055 P.R. China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China;

    State Key Laboratory of Precision Spectroscopy School of Physics and Electronic Science East China Normal University Shanghai 200241 P.R. China;

    College of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518055 P.R. China;

    State Key Laboratory of Precision Spectroscopy School of Physics and Electronic Science East China Normal University Shanghai 200241 P.R China;

    Shanghai Key Laboratory of Green Chemistry and Chemical Processes & Chang-Kung Chuang Institute School of Chemistry and Molecular Engineering East China Normal University Shanghai 200062 P.R. China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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