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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >One-Dimensional Nanostructures of π-Conjugated Molecular Systems: Assembly, Properties, and Applications from Photovoltaics, Sensors, and Nanophotonics to Nanoelectronics
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One-Dimensional Nanostructures of π-Conjugated Molecular Systems: Assembly, Properties, and Applications from Photovoltaics, Sensors, and Nanophotonics to Nanoelectronics

机译:π共轭分子系统的一维纳米结构:组装,性质和从光伏,传感器和纳米光子学到纳米电子学的应用

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摘要

This paper presents a comprehensive review of the literature on one-dimensional (1D) nanostructures (nanowires, nanoribbons, nanotubes, nanobelts, and nanofibers) of π-conjugated small molecules, oligomers, and polymers. The diverse methods used in assembling the molecular building blocks in to 1D functional nanostructures and nanodevices are discussed, including hard and soft template-assisted synthesis, electrospinning, nanolithography, self-assembly in solution and at interfaces, physical vapor transport, and other strategies. Optical, charge transport, electronic, and photoconductive properties of nanowires and nanotubes of selected classes of α-conjugated molecular systems are discussed next, highlighting unique features of the 1D nanostructures compared to 2D thin films. Overview of applications of these 1D organic nanostructures ranging from nanoscale light-emitting diodes, field-emission devices, organic photovoltaics, sensors/biosensors, spin-electronics, and nanophotonics to nanoelectronics is then given. The final section provides our brief concluding comments on the status of the field and on areas of outstanding challenges and opportunities for future work. We believe that the emerging confluence of nanoscience and organic semiconductors will greatly enrich both fields while leading to enhanced performance in organic electronics and affordable nanotechnologies.
机译:本文对π共轭小分子,低聚物和聚合物的一维(1D)纳米结构(纳米线,纳米带,纳米管,纳米带和纳米纤维)进行了全面的综述。讨论了在1D功能纳米结构和纳米器件中组装分子构件的各种方法,包括硬模板和软模板辅助合成,静电纺丝,纳米光刻,溶液和界面的自组装,物理气相传输以及其他策略。接下来讨论选定类别的α共轭分子系统的纳米线和纳米管的光学,电荷传输,电子和光电导性质,突出显示与2D薄膜相比1D纳米结构的独特特征。然后给出了这些一维有机纳米结构的应用概述,范围从纳米级发光二极管,场发射器件,有机光伏,传感器/生物传感器,自旋电子学,纳米光子学到纳米电子学。最后一部分提供了关于该领域的现状以及未来工作面临的巨大挑战和机遇的简短结论。我们认为,纳米科学与有机半导体的融合将极大地丰富这两个领域,同时还可以增强有机电子学和可负担的纳米技术的性能。

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