粘附
材料科学
生物医学工程
神经生理学
电极
接口(物质)
纳米技术
计算机科学
自愈水凝胶
数码产品
混合动力系统
数据采集
电流
临床诊断
神经系统
电子元件
信号(编程语言)
神经假体
脑-机接口
神经系统
电子系统
脑组织
纳米-
术中神经生理监测
功能性电刺激
生物相容性材料
临床实习
神经活动
3d打印
作者
Bo Pang,Ganguang Yang,Jiacheng Wen,Hangyu Gong,Caixin Gong,Yuqi Qiu,Zi Wang,Qingyang Zheng,Sen Zhou,Tianzhao Bu,Jia Tian,Zhouping Yin,Liu Y,Hao Wu
摘要
Neurological disorders severely impair the daily life of patients, necessitating precise assessments of neural conduction pathway damage to guide effective diagnosis and treatment. However, current clinical neurodiagnostic equipment is expensive, bulky, and restricted to hospital settings. Furthermore, the rigid nature and low adhesion of conventional electrodes lead to the acquisition of low-quality neurophysiological signals. Here, we develop a soft hybrid electronic system assembled with printed responsive hydrogel electrodes. By synthesizing thermoresponsive hydrogel microsphere inks, we achieve rapid direct-printed patterning of interface layers. Based on a thermally triggered hydration-dehydration strategy of hydrogel microspheres, the hydrogel electrodes demonstrate customizable adhesion, enabling intimate integration with skin for high-fidelity signal acquisition and gentle detachment after monitoring. Through hydrogel interface modification, on-skin electrodes also show excellent charge injection capability for stimulation and improved signal-to-noise ratio (SNR). The integration of hydrogel patches with the hybrid electronic system enables high-frequency and high-fidelity acquisition of subtle neural conduction signals. We further apply this system to assess injuries to the median and ulnar nerves in clinical cases, realizing accurate diagnosis of neural impairment while ensuring customized adhesion regulation. This user-friendly system holds great promise as a low-cost and portable diagnostic platform for telemedicine, home-based care, and clinical settings.
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