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在 KOH 中进行电化学处理可使碳纤维微电极表面得到更新和激活。

Electrochemical treatment in KOH renews and activates carbon fiber microelectrode surfaces.

机构信息

Department of Chemistry, University of Virginia, Charlottesville, VA, 22901, USA.

出版信息

Anal Bioanal Chem. 2021 Nov;413(27):6737-6746. doi: 10.1007/s00216-021-03539-6. Epub 2021 Jul 23.

Abstract

Carbon fiber microelectrodes (CFMEs) are the standard electrodes for fast-scan cyclic voltammetry (FSCV) detection of neurotransmitters. CFMEs are generally used untreated but the surface can be activated with different treatments to improve electrochemical performance. In this work, we explored electrochemical treatments to clean and activate the CFME surface. We used different solution conditions for electrochemical treatment and found that electrochemical pretreatment in KOH outperforms treatment in KCl, HO, or HCl by accelerating the surface renewal process. The etching rate of carbon with electrochemical treatment in KOH is 37 nm/min, which is 10 times faster than that in the other solutions. Electrochemical treatment in KOH for several minutes regenerates a new carbon surface, which introduces more oxygen functional groups beneficial for adsorption and electron transfer. The KOH-treated CFMEs improved the limit of detection (LOD) to 9 ± 2 nM from 14 ± 4 nM for untreated CFMEs, and they successfully detected stimulated dopamine release in rat brain slices, demonstrating that they are stable and sensitive enough to use in biological systems. Electrochemical treatment in KOH completely restores the electrode sensitivity after biofouling. The proposed electrochemical treatment is simple and fast and can be applied prior to using CFMEs or after use to restore the surface. Thus, the method has potential to be a standard step to clean the carbon surface, or restore the sensitivity of electrodes from biofouling.

摘要

碳纤维微电极(CFMEs)是用于快速扫描循环伏安法(FSCV)检测神经递质的标准电极。CFMEs 通常未经处理,但可以通过不同的处理来激活表面,以提高电化学性能。在这项工作中,我们探索了电化学处理来清洁和激活 CFME 表面。我们使用了不同的溶液条件进行电化学处理,发现 KOH 中的电化学预处理通过加速表面更新过程,优于 KCl、HO 或 HCl 中的处理。KOH 中电化学处理的碳蚀刻速率为 37nm/min,比其他溶液中的蚀刻速率快 10 倍。KOH 处理几分钟后,会再生一个新的碳表面,表面会引入更多有利于吸附和电子转移的含氧官能团。KOH 处理后的 CFMEs 将未处理的 CFMEs 的检测限(LOD)从 14±4 nM 提高到 9±2 nM,并且成功检测到大鼠脑片刺激的多巴胺释放,表明其稳定且足够灵敏,可用于生物系统。KOH 处理完全恢复了生物污染后的电极灵敏度。所提出的电化学处理简单、快速,可以在使用 CFMEs 之前或之后进行,以恢复表面。因此,该方法有可能成为清洁碳表面或恢复电极因生物污染而导致的灵敏度的标准步骤。

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