皮质电图
生物医学工程
脑植入物
神经假体
材料科学
多路复用
多电极阵列
数码产品
计算机科学
医学
微电极
电极
脑电图
电气工程
电信
工程类
精神科
化学
物理化学
作者
Ki Jun Yu,Duygu Kuzum,Suk‐Won Hwang,Bong Hoon Kim,Halvor Juul,Nam Heon Kim,Sang Min Won,Ken Chiang,Michael Trumpis,Andrew G. Richardson,Huanyu Cheng,Hui Fang,Marissa E. Thompson,Hank Bink,Delia M. Talos,Kyung Jin Seo,Hee Nam Lee,Seung‐Kyun Kang,Jae-Hwan Kim,Jung Yeop Lee
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2016-04-18
卷期号:15 (7): 782-791
被引量:465
摘要
Bioresorbable silicon electronics technology offers unprecedented opportunities to deploy advanced implantable monitoring systems that eliminate risks, cost and discomfort associated with surgical extraction. Applications include postoperative monitoring and transient physiologic recording after percutaneous or minimally invasive placement of vascular, cardiac, orthopaedic, neural or other devices. We present an embodiment of these materials in both passive and actively addressed arrays of bioresorbable silicon electrodes with multiplexing capabilities, which record in vivo electrophysiological signals from the cortical surface and the subgaleal space. The devices detect normal physiologic and epileptiform activity, both in acute and chronic recordings. Comparative studies show sensor performance comparable to standard clinical systems and reduced tissue reactivity relative to conventional clinical electrocorticography (ECoG) electrodes. This technology offers general applicability in neural interfaces, with additional potential utility in treatment of disorders where transient monitoring and modulation of physiologic function, implant integrity and tissue recovery or regeneration are required. Arrays of bioresorbable, highly doped silicon electrodes with multiplexing capabilities are used as electrocorticography sensors to perform in vivo, reliable acute and chronic recordings for up to one month before dissolving in the body.
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