生物电子学
晶体管
材料科学
跨导
电生理学
纳米技术
光电子学
生物传感器
电气工程
电压
神经科学
工程类
生物
作者
Claudia Cea,George D. Spyropoulos,Patricia Jastrzebska‐Perfect,José Javier Ferrero,Jennifer N. Gelinas,Dion Khodagholy
出处
期刊:Nature Materials
[Springer Nature]
日期:2020-03-16
卷期号:19 (6): 679-686
被引量:221
标识
DOI:10.1038/s41563-020-0638-3
摘要
Bioelectronic devices must be fast and sensitive to interact with the rapid, low-amplitude signals generated by neural tissue. They should also be biocompatible and soft, and should exhibit long-term stability in physiologic environments. Here, we develop an enhancement-mode, internal ion-gated organic electrochemical transistor (e-IGT) based on a reversible redox reaction and hydrated ion reservoirs within the conducting polymer channel, which enable long-term stable operation and shortened ion transit time. E-IGT transient responses depend on hole rather than ion mobility, and combine with high transconductance to result in a gain-bandwidth product that is several orders of magnitude above that of other ion-based transistors. We used these transistors to acquire a wide range of electrophysiological signals, including in vivo recording of neural action potentials, and to create soft, biocompatible, long-term implantable neural processing units for the real-time detection of epileptic discharges. E-IGTs offer a safe, reliable and high-performance building block for chronically implanted bioelectronics, with a spatiotemporal resolution at the scale of individual neurons.
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