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通过封装在具有不同孔径的周期性纳米多孔二氧化硅中来控制半导体聚合物的光学性质和链间相互作用。

Controlling optical properties and interchain interactions in semiconducting polymers by encapsulation in periodic nanoporous silicas with different pore sizes.

作者信息

Cadby Ashley J, Tolbert Sarah H

机构信息

Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095-1569, USA.

出版信息

J Phys Chem B. 2005 Sep 29;109(38):17879-86. doi: 10.1021/jp0536753.

Abstract

The photophysics of MEH-PPV incorporated into the pores of periodic silica hosts has been investigated in an effort to understand the role played by interchain aggregation and chain morphology in polaron production. In this work, guest/host interactions were used to incorporate MEH-PPV into the straight, homogeneous pores of hexagonal surfactant- or polymer-templated mesoporous silicas of varying pore diameters. Polarized photoluminescence and photoluminescence excitation spectroscopy were then used to investigate the polymers' environment within the silica pores. Experiments exploiting luminescence peak shifts and depolarization indicate that depending on the pore size and preparation conditions, the alignment and packing of the polymer chains within the pores could be controlled. Samples could be produced with isolated chains, interacting straight chains, and coiled interacting chains. The sub-bandgap absorption by polarons was then measured with photoinduced absorption as a function of pore size. Small-diameter pores that allowed single polymer chains to reside within the pore showed little evidence of interchain contact and had a low polaron yield. Increasing the number of polymer chains within the pore increased the polaron yield. Finally, when the pores were large enough that the chains could coil, strong polaron absorption was observed, indicative of a further increase in polaron yield or an increase in polaron lifetime. The polaron absorption spectra also sharpen and red shift with increasing pore diameter, suggesting that excitons may migrate to lower energy polymer segments in samples where polymer chains are both coiled and interacting.

摘要

为了理解链间聚集和链形态在极化子产生中所起的作用,人们对嵌入周期性二氧化硅主体孔中的MEH-PPV的光物理性质进行了研究。在这项工作中,利用客体/主体相互作用将MEH-PPV嵌入不同孔径的六方表面活性剂或聚合物模板介孔二氧化硅的直的、均匀的孔中。然后使用偏振光致发光和光致发光激发光谱来研究聚合物在二氧化硅孔内的环境。利用发光峰位移和去极化的实验表明,根据孔径和制备条件,可以控制聚合物链在孔内的排列和堆积。可以制备出具有孤立链、相互作用的直链和盘绕相互作用链的样品。然后用光诱导吸收测量极化子的亚带隙吸收作为孔径的函数。允许单个聚合物链驻留在孔内的小直径孔几乎没有链间接触的迹象,并且极化子产率较低。增加孔内聚合物链的数量会提高极化子产率。最后,当孔足够大以至于链可以盘绕时,观察到强烈的极化子吸收,这表明极化子产率进一步增加或极化子寿命增加。极化子吸收光谱也随着孔径的增加而变锐并红移,这表明在聚合物链既盘绕又相互作用的样品中,激子可能迁移到能量较低的聚合物链段。

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