Lee Seunghyeon, Ozlu Busra, Eom Taesik, Martin David C, Shim Bong Sup
Department of Chemical Engineering, Inha University 100 Inharo, Incheon, 22212, South Korea; Program in Biomedical Science & Engineering, Inha University 100 Inharo, Incheon, 22212, South Korea.
Department of Materials Science and Engineering, University of Delaware, Newark, DE 19716, USA.
Biosens Bioelectron. 2020 Dec 15;170:112620. doi: 10.1016/j.bios.2020.112620. Epub 2020 Sep 19.
Conductive polymers (CPs) are gaining considerable attention as materials for implantable bioelectronics due to their unique features such as electronic-ionic hybrid conductivity, mechanical softness, ease of chemical modification, as well as moderate biocompatibility. CPs have been utilized for a wide range of applications including neural engineering, regenerative medicine, multi-functional sensors and actuators. This review focuses on CP materials design for use in bio-interfacing electronics including composites, conductive hydrogels, and electrochemical deposition. We start by elaborating on the fundamental materials characteristics of CPs, including bio-electrochemical charge-transfer mechanisms, and contrast them with naturally derived CPs. We then present recent critical examples of the bioelectronic and biomedical applications of CPs, including neural recording and stimulation, tissue regeneration, stretchable electronics, and mechanical actuation. We conclude with a perspective of the current material challenges of CPs in bio-interfacing electronics.
导电聚合物(CPs)因其独特的特性,如电子 - 离子混合导电性、机械柔软性、易于化学修饰以及适度的生物相容性,作为可植入生物电子学的材料正受到广泛关注。CPs已被用于广泛的应用,包括神经工程、再生医学、多功能传感器和致动器。本综述重点关注用于生物接口电子学的CP材料设计,包括复合材料、导电水凝胶和电化学沉积。我们首先阐述CPs的基本材料特性,包括生物电化学电荷转移机制,并将它们与天然衍生的CPs进行对比。然后,我们展示CPs在生物电子学和生物医学应用中的近期关键实例,包括神经记录和刺激、组织再生、可拉伸电子学和机械驱动。我们最后展望了CPs在生物接口电子学中当前面临的材料挑战。