数码产品
电容耦合
电容感应
心脏电生理学
材料科学
电生理学
生物相容性材料
晶体管
联轴节(管道)
柔性电子器件
电气工程
生物医学工程
纳米技术
工程类
电压
医学
内科学
冶金
作者
Hui Fang,Ki Jun Yu,Christopher Gloschat,Zijian Yang,Enming Song,Chia‐Han Chiang,Jianing Zhao,Sang Min Won,Siyi Xu,Michael Trumpis,Yiding Zhong,Seung Won Han,Yeguang Xue,Dong Xu,Seo Woo Choi,Gert Cauwenberghs,Matthew W. Kay,Yonggang Huang,Jonathan Viventi,Igor R. Efimov,John A. Rogers
标识
DOI:10.1038/s41551-017-0038
摘要
Advanced capabilities in electrical recording are essential for the treatment of heart-rhythm diseases. The most advanced technologies use flexible integrated electronics; however, the penetration of biological fluids into the underlying electronics and any ensuing electrochemical reactions pose significant safety risks. Here, we show that an ultrathin, leakage-free, biocompatible dielectric layer can completely seal an underlying array of flexible electronics while allowing for electrophysiological measurements through capacitive coupling between tissue and the electronics, without the need for direct metal contact. The resulting current-leakage levels and operational lifetimes are, respectively, four orders of magnitude smaller and between two and three orders of magnitude longer than those of other flexible-electronics technologies. Systematic electrophysiological studies with normal, paced and arrhythmic conditions in Langendorff hearts highlight the capabilities of the capacitive-coupling approach. These advances provide realistic pathways towards the broad applicability of biocompatible, flexible electronic implants. Capacitive coupling between tissue and flexible integrated electronics through a sealing dielectric layer facilitates long-term electrophysiology measurements, as demonstrated in ex vivo Langendorff heart models.
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