Carbon Nanoelectrodes for the Electrochemical Detection of Neurotransmitters.

IF 2.3 Q3 ELECTROCHEMISTRY
International journal of electrochemistry Pub Date : 2018-01-01 Epub Date: 2018-08-01 DOI:10.1155/2018/3679627
Alexander G Zestos
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引用次数: 28

Abstract

Carbon-based electrodes have been developed for the detection of neurotransmitters over the past 30 years using voltammetry and amperometry. The traditional electrode for neurotransmitter detection is the carbon fiber microelectrode (CFME). The carbon-based electrode is suitable for in vivo neurotransmitter detection due to the fact that it is biocompatible and relatively small in surface area. The advent of nanoscale electrodes is in high demand due to smaller surface areas required to target specific brain regions that are also minimally invasive and cause relatively low tissue damage when implanted into living organisms. Carbon nanotubes (CNTs), carbon nanofibers, carbon nanospikes, and carbon nanopetals among others have all been utilized for this purpose. Novel electrode materials have also required novel insulations such as glass, epoxy, and polyimide coated fused silica capillaries for their construction and usage. Recent research developments have yielded a wide array of carbon nanoelectrodes with superior properties and performances in comparison to traditional electrode materials. These electrodes have thoroughly enhanced neurotransmitter detection allowing for the sensing of biological compounds at lower limits of detection, fast temporal resolution, and without surface fouling. This will allow for greater understanding of several neurological disease states based on the detection of neurotransmitters.

Abstract Image

Abstract Image

Abstract Image

用于神经递质电化学检测的碳纳米电极。
在过去的30年里,碳基电极已经被开发用于使用伏安法和安培法检测神经递质。传统的神经递质检测电极是碳纤维微电极(CFME)。由于碳基电极具有生物相容性和相对较小的表面积,因此适用于体内神经递质检测。纳米级电极的出现需求量很大,因为它需要更小的表面积来瞄准特定的大脑区域,并且在植入生物体时微创且造成相对较低的组织损伤。碳纳米管(CNTs)、碳纳米纤维、碳纳米尖刺和碳纳米金属等都被用于这一目的。新型电极材料也需要新型绝缘材料,如玻璃,环氧树脂和聚酰亚胺涂层熔融二氧化硅毛细管的结构和使用。最近的研究进展已经产生了各种各样的碳纳米电极,与传统电极材料相比,它们具有优越的性能和性能。这些电极彻底增强了神经递质检测,允许在较低的检测极限下感知生物化合物,快速的时间分辨率,并且没有表面污染。这将允许基于神经递质检测的几种神经系统疾病状态的更好的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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审稿时长
7 weeks
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