Google Inc. ., Mountain View , California 94043 , United States.
Centre for Nanotechnology and Regenerative Medicine, Division of Surgery and Interventional Science , University College London , London NW3 2QG , United Kingdom.
Chem Rev. 2018 Jul 25;118(14):6766-6843. doi: 10.1021/acs.chemrev.6b00275. Epub 2018 Jul 3.
Research pertaining to conductive polymers has gained significant traction in recent years, and their applications range from optoelectronics to material science. For all intents and purposes, conductive polymers can be described as Nobel Prize-winning materials, given that their discoverers were awarded the Nobel Prize in Chemistry in 2000. In this review, we seek to describe the chemical forms and functionalities of the main types of conductive polymers, as well as their synthesis methods. We also present an in-depth analysis of composite conductive polymers that contain various nanomaterials such as graphene, fullerene, carbon nanotubes, and paramagnetic metal ions. Natural polymers such as collagen, chitosan, fibroin, and hydrogel that are structurally modified for them to be conductive are also briefly touched upon. Finally, we expound on the plethora of biomedical applications that harbor the potential to be revolutionized by conductive polymers, with a particular focus on tissue engineering, regenerative medicine, and biosensors.
近年来,有关导电聚合物的研究受到了极大的关注,其应用范围从光电子学到材料科学。从所有意图和目的来看,导电聚合物可以被描述为获得诺贝尔奖的材料,因为它们的发现者在 2000 年获得了诺贝尔化学奖。在这篇综述中,我们试图描述主要类型的导电聚合物的化学形式和功能,以及它们的合成方法。我们还对包含各种纳米材料的复合导电聚合物进行了深入分析,如石墨烯、富勒烯、碳纳米管和顺磁金属离子。我们还简要介绍了结构改性后具有导电性的天然聚合物,如胶原蛋白、壳聚糖、丝素和水凝胶。最后,我们阐述了导电聚合物在众多具有潜在革命性的生物医学应用中的作用,特别关注组织工程、再生医学和生物传感器。