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八极部部花青染料的细微结构变化会影响单线态氧的光敏生成。

Subtle structural changes in octupolar merocyanine dyes influence the photosensitized production of singlet oxygen.

作者信息

Bregnhøj Mikkel, Pimenta Frederico M, Poronik Yevgen M, Gryko Daniel T, Ogilby Peter R

机构信息

Center for Oxygen Microscopy and Imaging, Department of Chemistry, Aarhus University, Aarhus, 8000 Denmark.

出版信息

Photochem Photobiol Sci. 2015 Jun;14(6):1138-46. doi: 10.1039/c5pp00080g.

Abstract

The photophysical properties of two indoline-based octupolar merocyanine dyes and of the corresponding quinoline-based dyes were examined. This seemingly subtle structural change in the chromophore of these molecules has an appreciable effect on the yields with which these respective compounds sensitize the production of singlet molecular oxygen, O2(a(1)Δg). The indoline-based dyes are reasonably efficient O2(a(1)Δg) sensitizers (ϕΔ ∼ 0.35), whereas the quinoline-based dyes are poor O2(a(1)Δg) sensitizers (ϕΔ ∼ 0.005). A series of experiments, including Laser-Induced Optoacoustic Calorimetric (LIOAC) measurements, reveal that this difference principally reflects the fact that the excited singlet state of the quinoline-based dyes rapidly and efficiently decays via nonradiative channels to regenerate the ground state molecule. It is likely that a charge-transfer state mediates this efficient coupling between the excited and ground states. Such subtle, structure-dependent effects are important in elucidating and ultimately understanding phenomena that influence the efficiency of photosensitized O2(a(1)Δg) production. In turn, the knowledge gained facilitates the rational design and preparation of O2(a(1)Δg) sensitizers with explicitly controlled properties.

摘要

研究了两种基于吲哚啉的八极部花菁染料以及相应的基于喹啉的染料的光物理性质。这些分子发色团中这种看似细微的结构变化,对这些化合物敏化单线态分子氧O₂(a¹Δg)产生的产率有显著影响。基于吲哚啉的染料是相当有效的O₂(a¹Δg)敏化剂(ϕΔ ∼ 0.35),而基于喹啉的染料是较差的O₂(a¹Δg)敏化剂(ϕΔ ∼ 0.005)。一系列实验,包括激光诱导光声量热法(LIOAC)测量,表明这种差异主要反映了这样一个事实,即基于喹啉的染料的激发单重态通过非辐射通道快速有效地衰减,以再生基态分子。很可能是电荷转移态介导了激发态与基态之间的这种有效耦合。这种细微的、依赖结构的效应对于阐明并最终理解影响光致敏O₂(a¹Δg)产生效率的现象很重要。反过来,所获得的知识有助于合理设计和制备具有明确可控性质的O₂(a¹Δg)敏化剂。

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