Organic Bioelectronics Laboratory, Biological and Environmental Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.
Adv Mater. 2020 Sep;32(36):e2001439. doi: 10.1002/adma.202001439. Epub 2020 Jul 21.
Conjugated polymers (CPs) possess a unique set of features setting them apart from other materials. These properties make them ideal when interfacing the biological world electronically. Their mixed electronic and ionic conductivity can be used to detect weak biological signals, deliver charged bioactive molecules, and mechanically or electrically stimulate tissues. CPs can be functionalized with various (bio)chemical moieties and blend with other functional materials, with the aim of modulating biological responses or endow specificity toward analytes of interest. They can absorb photons and generate electronic charges that are then used to stimulate cells or produce fuels. These polymers also have catalytic properties allowing them to harvest ambient energy and, along with their high capacitances, are promising materials for next-generation power sources integrated with bioelectronic devices. In this perspective, an overview of the key properties of CPs and examination of operational mechanism of electronic devices that leverage these properties for specific applications in bioelectronics is provided. In addition to discussing the chemical structure-functionality relationships of CPs applied at the biological interface, the development of new chemistries and form factors that would bring forth next-generation sensors, actuators, and their power sources, and, hence, advances in the field of organic bioelectronics is described.
共轭聚合物(CPs)具有独特的一系列特性,使其有别于其他材料。这些特性使它们在与电子世界的生物界面时非常理想。它们的混合电子和离子导电性可用于检测微弱的生物信号,传递带电的生物活性分子,并机械或电刺激组织。CPs 可以用各种(生物)化学部分官能化,并与其他功能材料混合,目的是调节生物反应或赋予对感兴趣的分析物的特异性。它们可以吸收光子并产生电子电荷,然后用于刺激细胞或产生燃料。这些聚合物还具有催化特性,允许它们收集环境能量,并且由于其高电容,它们是与生物电子设备集成的下一代电源的有前途的材料。在这篇观点文章中,概述了 CPs 的关键性质,并研究了利用这些性质在生物电子学中的特定应用的电子设备的操作机制。除了讨论应用于生物界面的 CPs 的化学结构-功能关系外,还描述了开发新的化学物质和形态因素,以带来下一代传感器、执行器及其电源,从而推动有机生物电子学领域的发展。