皮质电图
晶体管
计算机科学
接口(物质)
材料科学
瞬态(计算机编程)
脑-机接口
纳米技术
信号(编程语言)
生物医学工程
神经科学
脑电图
医学
电气工程
电压
生物
工程类
气泡
最大气泡压力法
并行计算
程序设计语言
操作系统
作者
Mengge Wu,Kuanming Yao,Ningge Huang,Hu Li,Jingkun Zhou,Rui Shi,Jiyu Li,Xingcan Huang,Jian Li,Huiling Jia,Zhan Gao,Tsz Hung Wong,Dengfeng Li,Sihui Hou,Yiming Liu,Shiming Zhang,Enming Song,Junsheng Yu,Xinge Yu
标识
DOI:10.1002/advs.202300504
摘要
Abstract A critical challenge lies in the development of the next‐generation neural interface, in mechanically tissue‐compatible fashion, that offer accurate, transient recording electrophysiological (EP) information and autonomous degradation after stable operation. Here, an ultrathin, lightweight, soft and multichannel neural interface is presented based on organic‐electrochemical‐transistor‐(OECT)‐based network, with capabilities of continuous high‐fidelity mapping of neural signals and biosafety active degrading after performing functions. Such platform yields a high spatiotemporal resolution of 1.42 ms and 20 µm, with signal‐to‐noise ratio up to ≈37 dB. The implantable OECT arrays can well establish stable functional neural interfaces, designed as fully biodegradable electronic platforms in vivo. Demonstrated applications of such OECT implants include real‐time monitoring of electrical activities from the cortical surface of rats under various conditions (e.g., narcosis, epileptic seizure, and electric stimuli) and electrocorticography mapping from 100 channels. This technology offers general applicability in neural interfaces, with great potential utility in treatment/diagnosis of neurological disorders.
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