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通过在NaOH溶液中的表面电化学氧化还原反应实现的液态镓电极的突触电流响应。

Synaptic Current Response of a Liquid Ga Electrode via a Surface Electrochemical Redox Reaction in a NaOH Solution.

作者信息

Seo Dahee, Ryou Heejoong, Hong Suck Won, Seo Jong Hyun, Shin Myunghun, Hwang Wan Sik

机构信息

Department of Materials Science and Engineering, Korea Aerospace University, Goyang 10540, Republic of Korea.

Smart Drone Convergence, Korea Aerospace University, Goyang 10540, Republic of Korea.

出版信息

ACS Omega. 2022 Jun 3;7(23):19872-19878. doi: 10.1021/acsomega.2c01645. eCollection 2022 Jun 14.

Abstract

An ionic device using a liquid Ga electrode in a 1 M NaOH solution is proposed to generate artificial neural spike signals. The oxidation and reduction at the liquid Ga surface were investigated for different bias voltages at 50 °C. When the positive sweep voltage from the starting voltage ( ) of 1 V was applied to the Ga electrode, the oxidation current flowed immediately and decreased exponentially with time. The spike and decay current behavior resembled the polarization and depolarization at the influx and extrusion of Ca in biological synapses. Different average decay times of ∼81 and ∼310 ms were implemented for of -2 and -5 V, respectively, to mimic the synaptic responses to short- and long-term plasticity; these decay states can be exploited for application in binary electrochemical memory devices. The oxidation mechanism of liquid Ga was studied. The differences in Ga ion concentration due to led to differences in oxidation behavior. Our device is beneficial for the organ cell-machine interface system because liquid Ga is biocompatible and flexible; thus, it can be applied in biocompatible and flexible neuromorphic device development for neuroprosthetics, human cell-machine interface formation, and personal health care monitoring.

摘要

提出了一种在1 M NaOH溶液中使用液态镓电极的离子装置来生成人工神经尖峰信号。研究了在50°C下不同偏置电压时液态镓表面的氧化和还原情况。当从1 V的起始电压( )向镓电极施加正向扫描电压时,氧化电流立即流动并随时间呈指数下降。尖峰和衰减电流行为类似于生物突触中Ca流入和挤出时的极化和去极化。分别对-2 V和-5 V的 实现了约81 ms和约310 ms的不同平均衰减时间,以模拟对短期和长期可塑性的突触反应;这些衰减状态可用于二元电化学存储器件。研究了液态镓的氧化机制。由于 导致的Ga离子浓度差异导致氧化行为的差异。我们的装置对器官细胞 - 机器接口系统有益,因为液态镓具有生物相容性和柔韧性;因此,它可应用于生物相容性和柔性神经形态器件开发,用于神经假体、人类细胞 - 机器接口形成和个人医疗保健监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2718/9202024/3f722305036e/ao2c01645_0002.jpg

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