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Conjugated polymers - Problems and promises

机译:共轭聚合物 - 问题和承诺

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Conjugated polymers (CPs) are unique in their synthetic challenges to tailor their chemical, electronic, and processing properties while identifying significant structure-to-property correlations. Over the past half century chemists have worked towards synthesizing more complex and solution processable conjugated polymers while approaching structural perfection. These efforts aim to maximize their beneficial properties such as high charge mobilities, impressive absorption and emission signals, as well as the ability to stabilize charges, among others. Yet, chemists have only scratched the surface of these characteristics, and new synthetic approaches continue to elevate the field of conjugated polymers. The processability of CPs is no longer solely dependent on adding solubilizing chains to the macromolecules, but can be achieved through polymerizing soluble derivatives that can undergo post-polymerization modification resulting in the desired CPs. New step-growth and chain-growth polymerization techniques have been discovered to provide control over polymerization of CPs to manipulate their molecular weight and molecular weight distribution, in addition to producing new "donor-acceptor" copolymers that have enhanced electronic and photophysical properties. Additionally, graphene nanoribbons can be synthesized with atomic precision along their edges to control their charge transport properties, and even their ability to create spins along their periphery for potential use in spintronics. New vapor-phase polymerization techniques have made it possible to create thin films of poorly soluble polymers without the need for toxic solvents, and recent breakthroughs in aryl-aryl couplings have eliminated the need for toxic and expensive reagents. Furthermore, strides have been made to bridge electrodes in organic devices with either small molecules or CPs in attempts of achieving single molecule devices, while chemists have also pursued expanding CPs into the second dimension in an effort to improve their charge carrier mobilities. In honor of Staudinger's 100th anniversary of identifying the field of polymer chemistry this article will outline how the synthetic evolution of conjugated polymers has resulted in the aforementioned properties, among others, and how these materials have opened the door for many state-of-the-art applications. (C) 2019 Elsevier B.V. All rights reserved.
机译:共轭聚合物(CPS)在其合成挑战中是独一无二的,以定制其化学,电子和加工特性,同时识别显着的结构与性质相关性。过去半世纪的化学家们在接近结构完美的同时合成更复杂和解决方案的可加工共轭聚合物。这些努力旨在最大限度地提高其诸如高电荷迁移率,令人印象深刻的吸收和排放信号的有益特性,以及稳定收费等能力。然而,化学家仅划伤了这些特性的表面,并且新的合成方法继续升高共轭聚合物的领域。 CPS的加工性不再依赖于向大分子加入溶解链,但是可以通过聚合可以经过聚合后修饰的可溶性衍生物来实现,得到所需的CP。已经发现新的步骤生长和链生长聚合技术,以提供对Cps的聚合来控制其分子量和分子量分布,除了产生具有增强的电子和光学性质的新的“供体 - 受体”共聚物。另外,石墨烯纳米队可以沿其边缘用原子精度合成以控制它们的电荷传输性能,甚至它们沿着它们的周边产生旋转的能力,以便在闪蒸中使用。新的气相聚合技术使得可以在不需要有毒溶剂的情况下制造薄膜的薄膜,并且最近芳基 - 芳基偶联中的突破消除了对毒性和昂贵的试剂的需要。此外,已经在实现单个分子装置的尝试中,在有机器件中桥接电极,以实现单个分子装置的尝试,而化学家也追求将CPS扩展到第二维度,以提高其电荷载体迁移能力。为了纪念富豪的100周年,鉴定聚合物化学领域本文将概述缀合聚合物的合成演化是如何导致上述性质,以及这些材料如何为许多状态打开门。艺术应用。 (c)2019年Elsevier B.V.保留所有权利。

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