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首页> 外文期刊>Advanced Functional Materials >Understanding the origin of the 535 nm emission band in oxidized poly(9,9-dioctylfluorene): The essential role of inter-chain/inter-segment interactions
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Understanding the origin of the 535 nm emission band in oxidized poly(9,9-dioctylfluorene): The essential role of inter-chain/inter-segment interactions

机译:了解氧化的聚(9,9-二辛基芴)中535 nm发射带的起源:链间/链段间相互作用的基本作用

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We present a careful study of the effects of photo-oxidation on the emissive properties of poly (9,9-dioctylfluorene) (PFO) that addresses important issues raised by a recent flurry of publications concerning the degradation of blue light-emitting, fluorene-based homo and copolymers. The photoluminescence (PL) spectra of thin PFO films oxidized at room temperature comprise two major components, namely a vibronically structured blue band and a green, structureless component, referred to hereafter as the 'g-band'. These are common features in a wide range of poly(fluorene)s (PFs) and whilst the former is uniformly accepted to be the result of intra-chain, fluorene-based, singlet-exciton emission, the origin of the 'g-band' is subject to increasing debate. Our studies, described in detail below, support the proposed formation of oxidation-induced fluorenone defects that quench intra-chain, singlet-exciton emission and activate the g-band emission. However, whilst these fluorenone defects are concluded to be necessary for the g-band emission to be observed, they are considered not to be, alone, sufficient. We show that inter-chain/inter-segment interactions are required for the appearance of the g-band in the PL spectra of PFO and propose that the g-band is attributable to emission from fluorenone-based excimers rather than from localized fluorenone pi-pi* transitions as recently suggested.
机译:我们对光氧化对聚(9,9-二辛基芴)(PFO)的发射性质的影响进行了仔细的研究,该研究解决了最近一系列有关降解蓝色发光的芴的出版物引起的重要问题。基均聚物和共聚物。在室温下被氧化的PFO薄膜的光致发光(PL)光谱包括两个主要成分,即纤维化的蓝色带和绿色的无结构的成分,以下称为“ g带”。这些是广泛的聚芴(PF)的共同特征,而前者被链内基于芴的单重态激子发射(g谱带的起源)统一接受, ”有越来越多的争论。我们的研究在下面进行了详细描述,支持拟议形成的氧化诱导的芴酮缺陷,该缺陷会淬灭链内,单重态激子发射并激活g带发射。然而,尽管这些芴酮缺陷被认为是观察g波段发射所必需的,但仅它们被认为是不够的。我们表明链间/段间相互作用是PFO的PL谱中g谱带的出现所必需的,并建议该g谱带归因于基于芴酮的准分子的发射,而不是归因于局部芴酮pi-。 pi *过渡,如最近建议的那样。

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