ACS Appl Mater Interfaces. 2019 Feb 13;11(6):6389-6395. doi: 10.1021/acsami.8b19252. Epub 2019 Feb 5.
Electrochemical sensors based on carbon nanotubes (CNTs) have great potential for use in wearable or implantable biomedical sensor applications because of their excellent mechanical flexibility and biocompatibility. However, the main challenge associated with CNT-based sensors is their uniform and reproducible fabrication on the flexible plastic film. Here, we introduce and demonstrate a highly reliable technique to fabricate flexible CNT microelectrodes on a plastic film. The technique involves a process whereby the CNT film is formed by the dry transfer process based on the floating-catalyst chemical vapor deposition. An oxide protection layer, which is used to cover the CNT thin film during the fabrication process, minimizes contamination of the surface. The fabricated flexible CNT microelectrodes show almost ideal electrochemical characteristics for microelectrodes with the average value of the quartile potentials, Δ E = | E - E|, being 60.4 ± 2.9 mV for the 28 electrodes, while the ideal value of Δ E = 56.4 mV. The CNT microelectrodes also showed enhanced resistance to surface fouling during dopamine oxidation in comparison to carbon fiber and gold microelectrodes; the degradation of the oxidation current after 10 consecutive cycles were 1.8, 8.3, and 13.9% for CNT, carbon fiber, and gold microelectrodes, respectively. The high-sensitivity detection of dopamine is also demonstrated with differential-pulse voltammetry, with a resulting limit of detection of ∼50 nM. The reliability, uniformity, and sensitivity of the present CNT microelectrodes provide a platform for flexible electrochemical sensors.
基于碳纳米管(CNTs)的电化学传感器在可穿戴或可植入生物医学传感器应用中具有很大的潜力,因为它们具有出色的机械柔韧性和生物相容性。然而,基于 CNT 的传感器的主要挑战是在柔性塑料薄膜上进行均匀和可重复的制造。在这里,我们介绍并展示了一种在塑料薄膜上制造柔性 CNT 微电极的高度可靠技术。该技术涉及一种工艺,其中 CNT 薄膜通过基于浮置催化剂化学气相沉积的干法转移工艺形成。氧化保护层用于在制造过程中覆盖 CNT 薄膜,最大限度地减少表面污染。所制造的柔性 CNT 微电极对于具有平均四分位电位值ΔE=|E-E|的微电极表现出几乎理想的电化学特性,对于 28 个电极,其平均值为 60.4±2.9 mV,而理想值为 56.4 mV。与碳纤维和金微电极相比,CNT 微电极在多巴胺氧化过程中也显示出增强的抗表面污染能力;连续 10 个循环后氧化电流的降解分别为 CNT、碳纤维和金微电极的 1.8%、8.3%和 13.9%。通过差分脉冲伏安法也证明了多巴胺的高灵敏度检测,检测限约为 50 nM。本 CNT 微电极的可靠性、均匀性和灵敏度为柔性电化学传感器提供了一个平台。