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纯净的TiCT MXene可实现柔性透明电化学传感器。

Pristine TiCT MXene Enables Flexible and Transparent Electrochemical Sensors.

作者信息

Noriega Natalia, Shekhirev Mikhail, Shuck Christopher E, Salvage Jonathan, VahidMohammadi Armin, Dymond Marcus K, Lacey Joseph, Sandeman Susan, Gogotsi Yury, Patel Bhavik Anil

机构信息

School of Applied Sciences, University of Brighton, Brighton BN2 4GJ, U.K.

Department of Materials Science and Engineering and A. J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, Pennsylvania 19104, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Feb 7;16(5):6569-6578. doi: 10.1021/acsami.3c14842. Epub 2024 Jan 23.

Abstract

In the era of the internet of things, there exists a pressing need for technologies that meet the stringent demands of wearable, self-powered, and seamlessly integrated devices. Current approaches to developing MXene-based electrochemical sensors involve either rigid or opaque components, limiting their use in niche applications. This study investigates the potential of pristine TiCT electrodes for flexible and transparent electrochemical sensing, achieved through an exploration of how material characteristics (flake size, flake orientation, film geometry, and uniformity) impact the electrochemical activity of the outer sphere redox probe ruthenium hexamine using cyclic voltammetry. The optimized electrode made of stacked large TiCT flakes demonstrated excellent reproducibility and resistance to bending conditions, suggesting their use for reliable, robust, and flexible sensors. Reducing electrode thickness resulted in an amplified faradaic-to-capacitance signal, which is advantageous for this application. This led to the deposition of transparent thin TiCT films, which maintained their best performance up to 73% transparency. These findings underscore its promise for high-performance, tailored sensors, marking a significant stride in advancing MXene utilization in next-generation electrochemical sensing technologies. The results encourage the analytical electrochemistry field to take advantage of the unique properties that pristine TiCT electrodes can provide in sensing through more parametric studies.

摘要

在物联网时代,迫切需要能够满足可穿戴、自供电和无缝集成设备严格要求的技术。目前开发基于MXene的电化学传感器的方法涉及刚性或不透明组件,限制了它们在特定应用中的使用。本研究通过循环伏安法探索材料特性(薄片尺寸、薄片取向、薄膜几何形状和均匀性)如何影响外球氧化还原探针六胺钌的电化学活性,研究了原始TiCT电极用于柔性和透明电化学传感的潜力。由堆叠的大TiCT薄片制成的优化电极表现出优异的重现性和抗弯曲性能,表明它们可用于可靠、坚固和柔性的传感器。减小电极厚度会导致法拉第电流与电容信号放大,这对该应用有利。这导致了透明TiCT薄膜的沉积,其在高达73%的透明度下仍保持最佳性能。这些发现突出了其在高性能定制传感器方面的前景,标志着在推进MXene在下一代电化学传感技术中的应用方面迈出了重要一步。研究结果鼓励分析电化学领域通过更多参数研究利用原始TiCT电极在传感中可提供的独特性能。

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