Ding Hanling, Jiang Ding, Du Xiaojiao, Zhang Zilian, Jiang Jinghan, Shan Xueling, Wang Wenchang, Shiigi Hiroshi, Chen Zhidong
Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering, Changzhou University, Changzhou, Jiangsu 213164, P. R. China.
Oakland International Associated Laboratory, School of Photoelectric Engineering, Changzhou Institute of Technology, Changzhou, Jiangsu 213032, P. R. China.
Anal Chem. 2023 Aug 29;95(34):12595-12599. doi: 10.1021/acs.analchem.3c01283. Epub 2023 Jul 31.
Self-powered electrochemical sensors, which can function without external electricity, are incredibly valuable in the realm of sensing. However, most of the present testing methods are normally confined to high environmental requirements, restricted lighting conditions, and temperature differences. Herein, an innovative self-powered electrochemical sensor was successfully developed based on hydrovoltaic effect coupling with capacitor amplification. Due to the combined merits from the two-dimensional transition metal carbides and nitrides (MXene)-polyaniline (PANI) with high surface potential and good hydrophilicity, and the capacitor amplification strategy, the device could harvest electric energy from water evaporation and displayed a high short circuit current value. Under optimal conditions, the proposed self-powered electrochemical sensor presented excellent sensitivity and high specificity for enrofloxacin (ENR) detection in the concentration range from 1 fM to 1 nM with a detection limit of 0.585 fM. Such a proposed sensor also has the advantages of environmental friendliness and ease of use, which is an ideal choice for accurately and precisely detecting ENR in real samples. The mode of such electrochemical detection outlined in this technical note implements a breakthrough in designing self-powered electrochemical sensors, providing a rational basis for development of a diversified sensing platform.
无需外部电源即可工作的自供电电化学传感器在传感领域具有极高的价值。然而,目前大多数测试方法通常局限于高环境要求、受限的光照条件和温度差异。在此,基于水电效应与电容放大相结合,成功开发了一种创新的自供电电化学传感器。由于具有高表面电位和良好亲水性的二维过渡金属碳化物和氮化物(MXene)-聚苯胺(PANI)的综合优点以及电容放大策略,该装置能够从水蒸发中获取电能,并显示出高短路电流值。在最佳条件下,所提出的自供电电化学传感器对恩诺沙星(ENR)在1 fM至1 nM浓度范围内的检测具有出色的灵敏度和高特异性,检测限为0.585 fM。这种所提出的传感器还具有环境友好和使用方便的优点,是准确精确检测实际样品中ENR的理想选择。本技术说明中概述的这种电化学检测模式在自供电电化学传感器的设计方面实现了突破,为多样化传感平台的开发提供了合理依据。