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基于杯芳烃的共面排列苝二酰亚胺阵列中的能量转移

Energy transfer in calixarene-based cofacial-positioned perylene bisimide arrays.

作者信息

Hippius Catharina, Schlosser Felix, Vysotsky Myroslav O, Böhmer Volker, Würthner Frank

机构信息

Institut für Organische Chemie, Universität Würzburg, Am Hubland, D-97074 Würzburg, Germany.

出版信息

J Am Chem Soc. 2006 Mar 29;128(12):3870-1. doi: 10.1021/ja058007+.

DOI:10.1021/ja058007+
PMID:16551069
Abstract

The synthesis of multichromophoric perylene bisimide-calix[4]arene arrays with up to five perylene units (containing orange, violet, and green perylene bisimide chromophores) and of monochromophoric model compounds was achieved by subsequent imidization of mono-Boc functionalized calix[4]arene linkers with three different types of perylene bisimide dye units. The optical properties of all compounds were studied with UV/vis absorption and steady state and time-resolved fluorescence spectroscopy. Upon excitation of the inner orange dye at 490 nm of array 3, strong fluorescence emission of the outer green perylene bisimide (PBI) chromophore at 744 nm is observed. The fluorescence excitation spectra of compounds 3 and 4 (lambdadet = 850 nm) show all absorption bands of the parent chromophores (e.g., all perylene units contribute to the emission from S1 state of the green PBI). Thus, the fluorescence emission and excitation spectra as well as time-resolved data of fluorescence lifetimes in the absence (tauD = 5.1 ns) and in the presence of an acceptor (tauDA = 0.8 ns) suggest efficient energy transfer processes between the perylene bisimide dye units. For the bichromophoric array 4, the energy transfer rate is calculated to a value of 1.05 x 109 s-1. These results demonstrate highly efficient energy transfer in cofacially assembled dye arrays.

摘要

通过用三种不同类型的苝二酰亚胺染料单元对单-Boc官能化杯[4]芳烃连接体进行后续酰亚胺化反应,实现了具有多达五个苝单元(包含橙色、紫色和绿色苝二酰亚胺发色团)的多发色团苝二酰亚胺-杯[4]芳烃阵列以及单发色团模型化合物的合成。使用紫外/可见吸收光谱、稳态荧光光谱和时间分辨荧光光谱对所有化合物的光学性质进行了研究。在激发阵列3的内部橙色染料于490 nm处时,观察到外部绿色苝二酰亚胺(PBI)发色团在744 nm处有强烈的荧光发射。化合物3和4(检测波长λdet = 850 nm)的荧光激发光谱显示了母体发色团的所有吸收带(例如,所有苝单元都对绿色PBI的S1态发射有贡献)。因此,荧光发射光谱和激发光谱以及在不存在受体(τD = 5.1 ns)和存在受体(τDA = 0.8 ns)时荧光寿命的时间分辨数据表明,苝二酰亚胺染料单元之间存在有效的能量转移过程。对于双色团阵列4,计算得到的能量转移速率值为1.05×109 s-1。这些结果证明了在共面组装的染料阵列中存在高效的能量转移。

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