生物电子学
材料科学
解耦(概率)
纳米技术
接口
可伸缩电子设备
生物医学工程
捆绑
弹性体
各向异性
生物加工
弹性(物理)
滑膜关节
拉伤
人工肌肉
机械负荷
导电体
纳米线
粘着
生物物理学
粘附
聚合物
单层
机械传动装置
作者
Tong Li,Fei Jin,Lisha Hua,Juan Ma,Fuyi Wang,Zhi-dong Wei,Ting Wang,Steven Wang,Zhang-Qi Feng,Tong Li,Fei Jin,Lisha Hua,Juan Ma,Fuyi Wang,Zhi-dong Wei,Ting Wang,Steven Wang,Zhang-Qi Feng
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-11-26
卷期号:11 (48)
标识
DOI:10.1126/sciadv.aea3345
摘要
Implantable bioelectronics for dynamic articular nerves require interfaces that harmonize extreme mechanical compliance at extreme strains exceeding 120%, stable conductivity, and metabolic permeability—a triad unattained by current stretchable devices. Here, we introduce liquid metal–based ultraelastic fibrous bioelectronics for articular nerves that overcome interfacial and mechanical limitations through molecular engineering and structural design. Thiol-functionalized self-assembled monolayers on liquid metal nanoparticles enhance interfacial adhesion with neural tissues, eliminating fibrous encapsulation, while anisotropic silver nanowire networks decouple mechanical strain from electron transport, achieving negligible resistance variation under 150% repetitive strain. The porous mesh structure enables fluid permeability five orders of magnitude higher than conventional materials, ensuring physiological nutrient exchange in synovial joints. In vivo integration with rat ulnar nerves demonstrated chronic neuromodulation over 6 weeks without disruption of functional behavior. This work redefines biomechanically adaptive neuroelectronics, offering a universal framework for interfacing dynamic biological systems, from prosthetic sensory feedback to treating neurodegenerative pathologies.
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