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用于氧化还原相关生物电子学的基于儿茶酚的电容器。

Catechol-Based Capacitor for Redox-Linked Bioelectronics.

作者信息

Wu Si, Kim Eunkyoung, Li Jinyang, Bentley William E, Shi Xiao-Wen, Payne Gregory F

机构信息

School of Resource and Environmental Science, Hubei Biomass-Resource Chemistry and Environmental Biotechnology Key Laboratory, Wuhan University, Wuhan 430079, China.

Institute for Bioscience and Biotechnology Research, University of Maryland, College Park, Maryland 20742, United States.

出版信息

ACS Appl Electron Mater. 2019 Aug 27;1(8):1337-1347. doi: 10.1021/acsaelm.9b00272. Epub 2019 Jul 3.

Abstract

A common bioelectronics goal is to enable communication between biology and electronics, and success is critically dependent on the communication modality. When a biorelevant modality aligns with instrumentation capabilities, remarkable successes have been observed (e.g., electrodes provide a powerful tool to observe and actuate biology through its ion-based electrical modality). Emerging biological research demonstrates that redox is another biologically relevant modality, and recent research has shown that advanced electrochemical methods enable biodevice communication through this redox modality. Here, we briefly summarize the biological relevance of this redox modality and the use of redox mediators to enable access to this modality through electrochemical measurements. Next, we describe the fabrication of a catechol-chitosan redox capacitor that is redox-active but nonconducting and thus offers a unique set of molecular electronic properties that enhance access to redox-based information. Finally, we cite several recent studies that demonstrate the broad potential for this capacitor to access redox-based biological information. In summary, we envision the redox capacitor will become a vital component in the integrated circuitry of redox-linked bioelectronics.

摘要

生物电子学的一个常见目标是实现生物学与电子学之间的通信,而成功与否关键取决于通信方式。当一种与生物相关的方式与仪器能力相匹配时,就会取得显著成功(例如,电极提供了一种强大的工具,可通过其基于离子的电方式来观察和驱动生物学过程)。新兴的生物学研究表明,氧化还原是另一种与生物相关的方式,最近的研究表明,先进的电化学方法能够通过这种氧化还原方式实现生物器件通信。在这里,我们简要总结这种氧化还原方式的生物学相关性以及使用氧化还原介质通过电化学测量来实现对该方式的利用。接下来,我们描述一种儿茶酚 - 壳聚糖氧化还原电容器的制造,该电容器具有氧化还原活性但不导电,因此具有一组独特的分子电子特性,可增强对基于氧化还原的信息的获取。最后,我们引用几项近期研究,这些研究证明了这种电容器在获取基于氧化还原的生物信息方面具有广泛潜力。总之,我们设想氧化还原电容器将成为氧化还原相关生物电子学集成电路中的重要组件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d94a/7034937/6033f552d1ee/nihms-1044359-f0002.jpg

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