Li Benxiang, Sui Nianzi, Li Min, Gu Weibing, Yang Wenming, Xu Wanzhen, Zhao Jianwen
School of the Environment and Safety Engineering, School of the Emergency Management, Jiangsu University, Zhenjiang, 212013, Jiangsu, PR China; Division of Nanodevices and Related Nanomaterials, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, No. 398 Ruoshui Road, SEID, Suzhou Industrial Park, Suzhou, 215123, Jiangsu, PR China; School of Nano Technology and Nano Bionics, University of Science and Technology of China, Hefei, 230026, Anhui, PR China.
Division of Nanodevices and Related Nanomaterials, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, No. 398 Ruoshui Road, SEID, Suzhou Industrial Park, Suzhou, 215123, Jiangsu, PR China; School of Nano Technology and Nano Bionics, University of Science and Technology of China, Hefei, 230026, Anhui, PR China.
Talanta. 2024 Aug 15;276:126285. doi: 10.1016/j.talanta.2024.126285. Epub 2024 May 20.
The advent of flexible single-walled carbon nanotube thin-film transistors (SWCNT-TFTs) has transformed electronics, providing significant benefits like low operating voltage, reduced power consumption, cost-effectiveness, and improved signal amplification. This study focuses on leveraging these attributes to develop a novel flexible high-sensitivity and energy-efficient chloride ion sensors based on printed flexible SWCNT-TFTs utilizing polymers-sorted semiconducting SWCNTs (sc-SWCNTs) as the active layers and ion liquids-poly(4-vinylphenol as dielectric layers along with the evaporated deposition of aluminum electrodes and printed silver electrodes as the gate and source-drain electrodes, respectively. The sensors exhibit several operational advantages, including low voltage requirements (≤1 V), rapid response speed (5.32 s), significant signal amplification (Up to 702.6 %), low power consumption (0.31 μJ at 1 mmol chloride ion), good repeatability, high sensitivity for both low and high concentrations of chloride ion (up to 100 mmol/L) and excellent mechanical flexibility (No obvious changes after bending for 10,000 times with a 5 mm radius). The detection mechanism of chloride ions was analyzed using X-ray Photoelectron Spectroscopy (XPS). It was found that chloride ions react with silver nanoparticles (AgNPs) to form silver chloride (AgCl) on printed electrodes, impeding carrier transport and reducing the currents in SWCNT TFTs. Importantly, our sensors' compatibility with smart devices allows for real-time monitoring of chloride ion levels in human sweat, offering significant potential for daily health monitoring.
柔性单壁碳纳米管薄膜晶体管(SWCNT-TFTs)的出现改变了电子学,带来了诸如低工作电压、降低功耗、成本效益高以及信号放大改善等显著优势。本研究着重利用这些特性,基于印刷柔性SWCNT-TFTs开发一种新型的柔性高灵敏度且节能的氯离子传感器,该传感器以聚合物分类的半导体单壁碳纳米管(sc-SWCNTs)作为有源层,离子液体-聚(4-乙烯基苯酚)作为介电层,同时分别通过铝电极的蒸发沉积以及印刷银电极作为栅极和源漏电极。这些传感器具有多个操作优势,包括低电压要求(≤1V)、快速响应速度(5.32秒)、显著的信号放大(高达702.6%)、低功耗(在1mmol氯离子时为0.31μJ)、良好的重复性、对低浓度和高浓度氯离子(高达100mmol/L)均具有高灵敏度以及出色的机械柔韧性(在半径为5mm的情况下弯曲10000次后无明显变化)。使用X射线光电子能谱(XPS)分析了氯离子的检测机制。研究发现,氯离子与印刷电极上的银纳米颗粒(AgNPs)反应形成氯化银(AgCl),阻碍载流子传输并降低SWCNT TFT中的电流。重要的是,我们的传感器与智能设备的兼容性使得能够实时监测人体汗液中的氯离子水平,为日常健康监测提供了巨大潜力。