生物电子学
材料科学
接口
导电体
电极
纳米技术
联锁
信号(编程语言)
桥(图论)
导电聚合物
生物传感器
桥接(联网)
压阻效应
光电子学
生物医学工程
纳米纤维
聚合物
电压
电化学
小型化
生物相容性材料
自愈水凝胶
碳纳米管
作者
Zihao Zhu,Lu Li,Yuxuan Wang,Yijing Yin,Xianchi Zhou,Zuolong Liu,Kexin Chen,Yu Yan,Jian Ji,Peng Zhang
摘要
Advances in implantable bioelectronics have improved the interaction between intelligent systems and biological tissues. Yet, the mechanical-immunological mismatch between rigid electrodes and soft tissues continues to limit long-term device stability. Here, we present SSPH, an immunocompatible, injectable, conductive hydrogel bridge that enables minimally invasive delivery and stable tissue integration. By forming a compliant interfacial bridge, SSPH reduces mechanical-biological mismatch and immune stress on electrodes. It is formed by the spontaneous co-assembly of PEDOT:PSS and the zwitterionic polymer poly(sulfobetaine methacrylate) (PSBMA), resulting in a 3D network stabilized by anion-π interactions, electrostatic interactions, and PEDOT-rich nanostructures. This self-healable architecture allows SSPH to maintain its intrinsic conductive pathways after deformation. Experiments confirmed that SSPH exhibits stable electrochemical properties and favorable immunocompatibility. In an acute muscle injury model, SSPH restored signal transmission across the damaged region, demonstrating its potential to serve as a bridge across disrupted tissue. Furthermore, in both electromyography recording and spinal cord stimulation models, SSPH preserved electrode performance for up to four weeks, supporting reliable bidirectional signal conduction. These results highlight SSPH as a promising, durable, and immunocompatible bridging material for sustained bioelectronic interfaces.
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