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织物负载聚苯胺纳米管复合材料用于高性能可穿戴氨传感器

Polyaniline Anchored MWCNTs on Fabric for High Performance Wearable Ammonia Sensor.

出版信息

ACS Sens. 2018 Sep 28;3(9):1822-1830. doi: 10.1021/acssensors.8b00589. Epub 2018 Sep 17.

Abstract

Polyaniline (PANI) functionalized multiwall carbon nanotubes (MWCNTs) were prepared via in situ chemical polymerization process of aniline, in which MWCNTs were spray coated on the fabric for wearable ammonia sensor. Structural, morphological, thermal properties and wettability were analyzed by scanning electron microscope, X-ray diffraction, Raman analysis and contact angle measurement. No substantial change in base resistance of MWCNTs/PANI fabric sensor was observed for a wide range of bending (from 90° to 270°) shows excellent wearability. The sensors were exposed to 20-100 ppm ammonia vapor at room temperature. It was observed that the sensing response of PANI coated MWCNTs was enhanced than MWCNTs and PANI. The sensor has the capability to detect ammonia with high sensitivity (92% for100 ppm), excellent selectivity quick response (9 s), and recovery time (30 s). The lower detection limit (LOD) for the MWCNTs/PANI fabric sensor was found to be 200 ppb. The influence of humidity on sensing parameters was studied. Sensing response and resistance of sensor have shown excellent stability after one month. We observed that PANI have a dual role in enhancing flexibility as well as improve the sensor performance toward ammonia. The results reveal the potential application of fabric based sensor for monitoring NH gas under ambient conditions.

摘要

聚苯胺(PANI)功能化多壁碳纳米管(MWCNTs)通过苯胺的原位化学聚合过程制备,其中 MWCNTs 喷涂在织物上用于可穿戴氨传感器。通过扫描电子显微镜、X 射线衍射、拉曼分析和接触角测量分析了结构、形态、热性能和润湿性。MWCNTs/PANI 织物传感器的基阻在宽弯曲范围(90°至 270°)下没有明显变化,表现出优异的可穿戴性。传感器在室温下暴露于 20-100 ppm 的氨蒸气中。观察到涂有 PANI 的 MWCNTs 的传感响应比 MWCNTs 和 PANI 增强。该传感器具有高灵敏度(100 ppm 时为 92%)、出色的选择性、快速响应(9 秒)和恢复时间(30 秒)的能力,可检测氨。MWCNTs/PANI 织物传感器的检测下限(LOD)被发现为 200 ppb。研究了湿度对传感参数的影响。一个月后,传感器的传感响应和电阻表现出优异的稳定性。我们观察到 PANI 在提高弹性和改善传感器对氨的性能方面具有双重作用。结果表明,基于织物的传感器在环境条件下监测 NH 气体具有潜在的应用前景。

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