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High performance, low cost carbon nanotube yarn based 3D printed electrodes compatible with a conventional screen printed electrode system

机译:与传统的丝网印刷电极系统兼容的高性能,低成本的碳纳米管纱线基3D打印电极

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摘要

3D printing technology has been widely used as a rapid prototyping fabrication tool in several fields, including electrochemistry. In this work, we incorporate 3D printing technology with carbon nanotube yarns for electrochemical sensing of dopamine in the presence of ascorbic acid and uric acid. The novel 3D printed electrode provides a circular concavity detection zone with grooves to insert three electrodes. The electrode connections are fully compatible with conventional screen printed electrode workstation setups. The CNT yarn 3D printed electrode showed excellent electrocatalytic activity for the redox reaction of dopamine (DA) in the presence of ascorbic acid (AA) and uric acid (UA). Three well-defined sharp and fully resolved anodic peaks were found with the peak potentials using cyclic voltammetry (CV) at 50 mV, 305 mV, and 545 mV for AA, DA, and UA respectively and using differential pulse voltammetry (DPV) at 91 mV, 389 mV, and 569 mV, respectively. DA detection limit was 0.87 ± 0.09 μM. The CNT yarn 3D printed electrode displayed high reproducibility and stability. The electrode design enables the study of electrode reactions at the sidewall of CNTs, which cannot be performed using electrodes made by conventional fabrication methods. The new fabrication method provides a new platform to prototype new electrode materials for electrochemistry, providing a low-cost, customizable design compatible existing screen printed electrodes technology.
机译:3D打印技术已在包括电化学在内的多个领域中广泛用作快速原型制造工具。在这项工作中,我们将3D打印技术与碳纳米管纱线相结合,用于在抗坏血酸和尿酸存在下对多巴胺进行电化学感应。新颖的3D打印电极提供了带有凹槽的圆形凹面检测区域,可插入三个电极。电极连接与传统的丝网印刷电极工作站设置完全兼容。 CNT纱线3D打印电极在抗坏血酸(AA)和尿酸(UA)的存在下对多巴胺(DA)的氧化还原反应表现出出色的电催化活性。使用循环伏安法(CV)在50 mV,305 mV和545 mV处分别对AA,DA和UA以及在91处使用差分脉冲伏安法(DPV)发现了三个明确定义的尖锐且完全分辨的阳极峰mV,389 mV和569 mV。 DA检测极限为0.87±0.09μM。 CNT纱线3D打印电极显示出高重现性和稳定性。电极设计能够研究CNT侧壁上的电极反应,而这是使用常规制造方法制成的电极无法完成的。这种新的制造方法提供了一个新的平台,用于为电化学的新电极材料制作原型,从而提供了一种与现有丝网印刷电极技术兼容的低成本,可定制设计。

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