Zhang Jiajun, Wang Lulu, Xue Yu, Lei Iek Man, Chen Xingmei, Zhang Pei, Cai Chengcheng, Liang Xiangyu, Lu Yi, Liu Ji
Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.
CAS Key Laboratory of Brain Connectome and Manipulation, the Brain Cognition and Brain Disease Institute, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen-Hong Kong Institute of Brain Science-Shenzhen Fundamental Research Institutions, Shenzhen, 518055, China.
Adv Mater. 2023 Jan;35(3):e2209324. doi: 10.1002/adma.202209324. Epub 2022 Dec 16.
Coating conventional metallic electrodes with conducting polymers has enabled the essential characteristics required for bioelectronics, such as biocompatibility, electrical conductivity, mechanical compliance, and the capacity for structural and chemical functionalization of the bioelectrodes. However, the fragile interface between the conducting polymer and the electrode in wet physiological environment greatly limits their utility and reliability. Here, a general yet reliable strategy to seamlessly interface conventional electrodes with conducting hydrogel coatings is established, featuring tissue-like modulus, highly-desirable electrochemical properties, robust interface, and long-term reliability. Numerical modeling reveals the role of toughening mechanism, synergy of covalent anchorage of long-chain polymers, and chemical cross-linking, in improving the long-term robustness of the interface. Through in vivo implantation in freely-moving mouse models, it is shown that stable electrophysiological recording can be achieved, while the conducting hydrogel-electrode interface remains robust during the long-term low-voltage electrical stimulation. This simple yet versatile design strategy addresses the long-standing technical challenges in functional bioelectrode engineering, and opens up new avenues for the next-generation diagnostic brain-machine interfaces.
用导电聚合物包覆传统金属电极,可实现生物电子学所需的基本特性,如生物相容性、导电性、机械顺应性以及生物电极进行结构和化学功能化的能力。然而,在潮湿生理环境中,导电聚合物与电极之间脆弱的界面极大地限制了它们的实用性和可靠性。在此,建立了一种通用且可靠的策略,使传统电极与导电水凝胶涂层无缝连接,该策略具有类似组织的模量、高度理想的电化学性质、坚固的界面和长期可靠性。数值模拟揭示了增韧机制、长链聚合物共价锚固与化学交联的协同作用在提高界面长期稳定性方面的作用。通过在自由活动小鼠模型中的体内植入实验表明,该策略能够实现稳定的电生理记录,同时在长期低压电刺激过程中,导电水凝胶 - 电极界面仍保持稳定。这种简单而通用的设计策略解决了功能性生物电极工程中长期存在的技术难题,并为下一代诊断性脑机接口开辟了新途径。