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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Tailoring the microstructure and charge transport in conjugated polymers by alkyl side-chain engineering
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Tailoring the microstructure and charge transport in conjugated polymers by alkyl side-chain engineering

机译:通过烷基侧链工程定制共轭聚合物的微观结构和电荷传输

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摘要

Charge transport in conjugated polymers is critical to most optoelectronic devices and depends strongly on the polymer structure and conformation in the solid state. Understanding the correlations between charge carrier mobility, energy disorder and molecular assembly is therefore essential to improve device performances. Alkyl side-chains contribute to intermolecular interactions and are key to controlling the polymer microstructure and electronic properties. Investigating a set of polymers with common conjugated units but different side-chain functionalization provides new insights into the complex structure-transport relationship. Here, field-effect transistors and space-charge-limited current devices are used together with in situ grazing-incidence wide-angle X-ray scattering to study charge transport and morphology in a series of donor-acceptor copolymers. Probing hole mobility as a function of carrier density and orientation permits us to assess energy disorder and hopping rate anisotropy, while X-ray diffraction allows us to link transport properties to the polymer microstructure. We show that branched side-chains enhance structural and energy disorder and lead to isotropic transport, whereas linear chains induce either a common lamellar structure or a more exceptional pseudo-hexagonal columnar phase with a helicoidal polymer conformation. The latter enhances out-of-plane mobility but increases energy disorder possibly due to larger interring torsion angles.
机译:共轭聚合物中的电荷传输对大多数光电器件至关重要,并且在很大程度上取决于固态的聚合物结构和构象。因此,了解电荷载流子迁移率,能量紊乱和分子组装之间的相关性对于改善器件性能至关重要。烷基侧链有助于分子间相互作用,是控制聚合物微结构和电子性能的关键。研究一组具有共同共轭单元但侧链官能度不同的聚合物,可以为复杂的结构-传输关系提供新的见解。在此,将场效应晶体管和空间电荷受限电流器件与原位掠入射广角X射线散射一起使用,以研究一系列供体-受体共聚物中的电荷传输和形态。探究空穴迁移率与载流子密度和取向的关系,使我们能够评估能量紊乱和跳跃率各向异性,而X射线衍射使我们能够将传输特性与聚合物微结构联系起来。我们显示,支链侧链增强结构和能量紊乱,并导致各向同性的运输,而线性链则诱导了常见的层状结构或具有螺旋聚合物构象的更优异的伪六方柱状相。后者增强了平面外的可动性,但可能由于较大的环扭角而增加了能量混乱。

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