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首页> 外文期刊>Synthetic Metals >Interchain and intrachain exciton transport in conjugated polymers: ultrafast studies of energy migration in aligned MEH-PPV/mesoporous silica composites
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Interchain and intrachain exciton transport in conjugated polymers: ultrafast studies of energy migration in aligned MEH-PPV/mesoporous silica composites

机译:共轭聚合物中链间和链内激子运输:对齐的MEH-PPV /介孔二氧化硅复合材料中能量迁移的超快研究

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摘要

In this paper, we show how composite samples consisting of chains of the semiconducting polymer MEH-PPV embedded into the channels of oriented, hexagonal nanoporous silica glass allow control over energy transfer and exciton migration in the polymer. The composite samples are characterized by two polymer environments: randomly oriented and film-like segments with short conjugation-length outside the channels, and well aligned, long conjugation segments that are isolated by encapsulation within the porous glass. Ultrafast emission anisotropy measurements show that excitons migrate unidirectionally from the polymer segments outside the pores to the oriented chains within the pores, leading to a spontaneous increase in emission polarization with time. Because the chains in the pores are isolated, the observed increase in polarization can take place only by exciton migration along the polymer backbone. The anisotropy measurements show that energy migration along the backbone occurs more slowly than Forster energy transfer between polymer chains; transfer along the chain likely takes place by a thermally-activated hopping mechanism. Similar time scales for intra- and interchain energy transfer are also observed for MEH-PPV chains in solution. All the results provide new insights for optimizing the use of conjugated polymers in optoelectronic devices.
机译:在本文中,我们显示了由嵌入定向的六角形纳米多孔硅玻璃通道中的半导体聚合物MEH-PPV链组成的复合样品如何控制聚合物中的能量转移和激子迁移。复合材料样品的特征在于两种聚合物环境:随机定向的膜状链段,在通道外具有短的共轭长度,以及排列整齐的长共轭链段,这些段通过封装在多孔玻璃中而被隔离。超快发射各向异性测量结果表明,激子从孔外的聚合物链段单向迁移到孔内的定向链,导致发射极化随时间自发增加。因为孔中的链是隔离的,所以观察到的极化增加只能通过沿聚合物主链的激子迁移来发生。各向异性的测量结果表明,沿着主链的能量迁移比聚合物链之间的Forster能量转移更慢。沿链条的转移很可能是通过热激活的跳跃机制进行的。对于溶液中的MEH-PPV链,也观察到类似的链内和链间能量转移时间尺度。所有结果为优化共轭聚合物在光电器件中的使用提供了新的见识。

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