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Carbon Nanotube Yarn Microelectrodes Promote High Temporal Measurements of Serotonin Using Fast Scan Cyclic Voltammetry

机译:碳纳米管纱线微电极使用快速扫描循环伏安法促进5-羟色胺的高温测定

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摘要

Carbon fiber-microelectrodes (CFMEs) have been the standard for neurotransmitter detection for over forty years. However, in recent years, there have been many advances of utilizing alternative nanomaterials for neurotransmitter detection with fast scan cyclic voltammetry (FSCV). Recently, carbon nanotube (CNT) yarns have been developed as the working electrode materials for neurotransmitter sensing capabilities with fast scan cyclic voltammetry. Carbon nanotubes are ideal for neurotransmitter detection because they have higher aspect ratios enabling monoamine adsorption and lower limits of detection, faster electron transfer kinetics, and a resistance to surface fouling. Several methods to modify CFMEs with CNTs have resulted in increases in sensitivity, but have also increased noise and led to irreproducible results. In this study, we utilize commercially available CNT-yarns to make microelectrodes as enhanced neurotransmitter sensors for neurotransmitters such as serotonin. CNT-yarn microelectrodes have significantly higher sensitivities (peak oxidative currents of the cyclic voltammograms) than CFMEs and faster electron transfer kinetics as measured by peak separation (Δ ) values. Moreover, both serotonin and dopamine are adsorption controlled to the surface of the electrode as measured by scan rate and concentration experiments. CNT yarn microelectrodes also resisted surface fouling of serotonin onto the surface of the electrode over thirty minutes and had a wave application frequency independent response to sensitivity at the surface of the electrode.
机译:四十多年来,碳纤维微电极(CFME)一直是神经递质检测的标准。然而,近年来,利用替代纳米材料通过快速扫描循环伏安法(FSCV)进行神经递质检测已取得了许多进展。最近,碳纳米管(CNT)纱线已被开发为具有快速扫描循环伏安法的神经递质传感功能的工作电极材料。碳纳米管具有较高的纵横比,可实现单胺吸附,并具有较低的检测限,更快的电子传输动力学以及对表面结垢的抵抗力,因此是神经递质检测的理想选择。几种用CNT改性CFME的方法已导致灵敏度提高,但同时也增加了噪声并导致无法再现的结果。在这项研究中,我们利用市售的CNT纱线制造微电极,以增强神经递质(如血清素)的神经递质传感器。 CNT纱线微电极具有比CFME更高的灵敏度(循环伏安图的峰值氧化电流),并且通过峰分离(Δ)值测得的电子转移动力学更快。此外,通过扫描速率和浓度实验测量,5-羟色胺和多巴胺都被吸附控制在电极表面。 CNT纱线微电极还可以在30分钟内抵抗5-羟色胺在电极表面上的结垢,并且对电极表面的敏感性具有与波施加频率无关的响应。

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