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Zinc porphyrin/fullerene/block copolymer micelle for enhanced electron transfer ability and stability

机译:锌卟啉/富勒烯/嵌段共聚物胶束可增强电子转移能力和稳定性

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摘要

Inspired by the structures of antenna-reaction centers in photosynthesis, a complex micelle was prepared from zinc tetrakis(4-sulfonatophenyl) porphyrin (ZnTPPS), modified fullerene (mC60) and poly(ethylene glycol)-block-poly(L-lysine) (PEG-b-PLys) by electrostatic interactions. The core–shell structure made the donor–acceptor system work in an aqueous environment. In the micellar core, ZnTPPS and mC60 molecules were surrounded by each other which ensured effective energy migration from the donor to the acceptor. The emission of the porphyrin was quenched efficiently which was confirmed by a series of fluorescence spectra. In comparison with the ZnTPPS micelle, the interaction of the mC60 with the porphyrin inhibited the generation of singlet oxygen, which was measured by electron paramagnetic resonance (EPR) and iodide method. In addition, enhanced generation of the superoxide radical was detected by reduction of nitro blue tetrazolium (NBT) in the presence of an electron donor. What is more, the complex micelle exhibited high electron transfer performance in the photocatalytic reduction of methyl viologen. The complex micellar structure endowed the donor–acceptor system with improved stability in an acidic environment. This strategy would be helpful for designing a new electron transfer platform and artificial photosynthetic system.
机译:受光合作用中天线反应中心结构的启发,由四(4-磺酰基苯基)卟啉锌(ZnTPPS),改性富勒烯(mC 60 )制备了复杂的胶束。和聚乙二醇-嵌段-聚( L -赖氨酸)(PEG- b -PLys)。核-壳结构使供体-受体系统在水性环境中起作用。在胶束核心中,ZnTPPS和mC 60 分子被彼此包围,从而确保了有效的能量从供体向受体的迁移。通过一系列荧光光谱证实了卟啉的发射被有效地淬灭。与ZnTPPS胶束相比,mC 60 与卟啉的相互作用抑制了单线态氧的生成,这是通过电子顺磁共振(EPR)和碘化物法测定的。另外,通过在电子给体的存在下还原硝基蓝四唑(NBT),检测到超氧化物自由基的产生增加。此外,复合胶束在甲基紫精的光催化还原中表现出高电子转移性能。复杂的胶束结构赋予了供体-受体系统在酸性环境中更高的稳定性。该策略将有助于设计新的电子转移平台和人工光合作用系统。

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