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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Energy Transfer in Supramolecular Artificial Antennae Units of Synthetic Zinc Chlorins and Co-aggregated Energy Traps. A Time-Resolved Fluorescence Study
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Energy Transfer in Supramolecular Artificial Antennae Units of Synthetic Zinc Chlorins and Co-aggregated Energy Traps. A Time-Resolved Fluorescence Study

机译:合成锌氯化物和共聚集能阱的超分子人工天线单元中的能量转移。时间分辨荧光研究

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Using time-resolved fluorescence, we explored the energy transfer process(es) in supramolecular zinc chlorin aggregates co-aggregated with various kinds of energy traps. The energy transfer times from the antenna aggregate to the trap are in the picosecond time range (7-9 ps) under reducing conditions (addition of dithionite to avoid oxidative quenching) and were resolved in all cases. Under nonreducing conditions substantial fluorescence quenching occurred in the antenna aggregates. We tentatively suggest that a small amount of chlorin cations acts as a quencher. We find that in the aggregates the excitation is delocalized over at least 10-15 pigments, on the basis of the corresponding strong increase of the pure radiative rate vs a monomeric chlorin. In bacteriochlorophyll-based aggregates the transfer to the energy trap is biexponential (27 and 91 ps), which is reminiscent of native isolated chlorosomes from green sulfur bacteria. For the zinc chlorinbased light-harvesting units the overall efficiency of the energy collection reaches up to 70%. We conclude that these units have suitable properties as artificial antenna systems for solar energy utilization.
机译:使用时间分辨荧光,我们探索了与各种能量陷阱共同聚集的超分子二氢锌卟啉聚集体的能量转移过程。在还原条件下(添加连二亚硫酸盐以避免氧化猝灭),从天线集合体到陷阱的能量转移时间在皮秒时间范围内(7-9 ps),并且在所有情况下都可以解决。在非还原条件下,天线聚集体中发生了实质性的荧光猝灭。我们初步建议少量的二氢卟酚阳离子起猝灭剂的作用。我们发现,在聚集体中,在纯辐射速率相对于单体二氢卟酚的相应强烈增加的基础上,激发在至少10-15种颜料上是离域的。在基于细菌叶绿素的聚集体中,向能量陷阱的转移是双指数的(27和91 ps),这让人想起从绿色硫细菌中分离出的天然脂质体。对于基于二氢锌锌的采光装置,能量收集的总效率高达70%。我们得出的结论是,这些单元具有适合用作太阳能利用人造天线系统的特性。

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