通过嵌入超薄绝缘膜的分子线控制电子转移,驱动氧化还原催化反应

IF 2.9 3区 生物学 Q2 PLANT SCIENCES
Heinz Frei
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引用次数: 0

摘要

厚度仅为几纳米的有机双层膜或无定形二氧化硅膜具有嵌入式分子线的特点,这为化学分离同时以电子方式连接光催化或电催化元件提供了机会。这种超薄薄膜可将直接耦合效率不高或不稳定的元件整合在一起。用于产生或利用可再生能源的光电催化系统是最突出的系统之一,超薄分离层为其开辟了组件集成的新方法,从而提高了效率。最近在组装和光谱、显微镜以及光电化学特性分析方面取得的进展,使得嵌入式分子线的结构、能量学和密度得到了系统优化,从而实现了最大的电荷转移效率。这些进展使人工光系统和用于可再生能源的微生物(或生物分子)-生物系统的不相容氧化和还原催化环境的纳米级集成界面设计成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Controlled electron transfer by molecular wires embedded in ultrathin insulating membranes for driving redox catalysis

Controlled electron transfer by molecular wires embedded in ultrathin insulating membranes for driving redox catalysis

Organic bilayers or amorphous silica films of a few nanometer thickness featuring embedded molecular wires offer opportunities for chemically separating while at the same time electronically connecting photo- or electrocatalytic components. Such ultrathin membranes enable the integration of components for which direct coupling is not sufficiently efficient or stable. Photoelectrocatalytic systems for the generation or utilization of renewable energy are among the most prominent ones for which ultrathin separation layers open up new approaches for component integration for improving efficiency. Recent advances in the assembly and spectroscopic, microscopic, and photoelectrochemical characterization have enabled the systematic optimization of the structure, energetics, and density of embedded molecular wires for maximum charge transfer efficiency. The progress enables interfacial designs for the nanoscale integration of the incompatible oxidation and reduction catalysis environments of artificial photosystems and of microbial (or biomolecular)-abiotic systems for renewable energy.

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来源期刊
Photosynthesis Research
Photosynthesis Research 生物-植物科学
CiteScore
6.90
自引率
8.10%
发文量
91
审稿时长
4.5 months
期刊介绍: Photosynthesis Research is an international journal open to papers of merit dealing with both basic and applied aspects of photosynthesis. It covers all aspects of photosynthesis research, including, but not limited to, light absorption and emission, excitation energy transfer, primary photochemistry, model systems, membrane components, protein complexes, electron transport, photophosphorylation, carbon assimilation, regulatory phenomena, molecular biology, environmental and ecological aspects, photorespiration, and bacterial and algal photosynthesis.
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