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High-performance polymer semiconducting heterostructure devices by nitrene-mediated photocrosslinking of alkyl side chains

机译:氮烯介导的烷基侧链光交联的高性能聚合物半导体异质结构器件

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摘要

Heterostructures are central to the efficient manipulation of charge carriers, excitons and photons for high-performance semiconductor devices. Although these can be formed by stepwise evaporation of molecular semiconductors, they are a considerable challenge for polymers owing to re-dissolution of the underlying layers. Here we demonstrate a simple and versatile photocrosslinking methodology based on sterically hindered bis(fluorophenyl azide)s. The photocrosslinking efficiency is high and dominated by alkyl side-chain insertion reactions, which do not degrade semiconductor properties. We demonstrate two new back-infiltrated and contiguous interpenetrating donor-acceptor heterostructures for photovoltaic applications that inherently overcome internal recombination losses by ensuring path continuity to give high carrier-collection efficiency. This provides the appropriate morphology for high-efficiency polymer-based photovoltaics. We also demonstrate photopatternable polymer-based field-effect transistors and light-emitting diodes, and highly efficient separate-confinement-heterostructure light-emitting diodes. These results open the way to the general development of high-performance polymer semiconductor heterostructures that have not previously been thought possible.
机译:异质结构对于高效操纵高性能半导体器件的载流子,激子和光子至关重要。尽管这些可以通过逐步蒸发分子半导体来形成,但是由于底层的重新溶解,它们对于聚合物而言是一个巨大的挑战。在这里,我们展示了一种基于空间受阻的双(氟苯基叠氮化物)的简单而通用的光交联方法。光交联效率很高,并且主要受烷基侧链插入反应的影响,而不会降低半导体的性能。我们演示了两种新的反向渗透和连续的互穿供体-受体异质结构,用于光伏应用,通过确保路径连续性以提供高载流子收集效率,固有地克服了内部重组损失。这为高效的基于聚合物的光伏提供了适当的形态。我们还演示了可光图案化的基于聚合物的场效应晶体管和发光二极管,以及高效的分离约束异质结构发光二极管。这些结果为高性能聚合物半导体异质结构的全面开发开辟了道路,而以前人们认为这是不可能的。

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  • 来源
    《Nature Materials》 |2010年第2期|152-158|共7页
  • 作者单位

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

    Department of Chemistry, National University of Singapore, Lower Kent Ridge Road, S117543, Singapore;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

    Cavendish Laboratory, University of Cambridge, JJ Thomson Road, Cambridge, CB3 0HE, UK;

    Department of Chemistry, National University of Singapore, Lower Kent Ridge Road, S117543, Singapore;

    Cambridge Display Technology Ltd, Bldg 2020, Cambourne Business Park, Cambridgeshire, CB3 6DW, UK;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore Department of Chemistry, National University of Singapore, Lower Kent Ridge Road, S117543, Singapore Cavendish Laboratory, University of Cambridge, JJ Thomson Road, Cambridge, CB3 0HE, UK;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore Cavendish Laboratory, University of Cambridge, JJ Thomson Road, Cambridge, CB3 0HE, UK;

    Department of Physics, National University of Singapore, Lower Kent Ridge Road, S117542, Singapore;

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