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基于聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐/二氧化钛微/纳米纤维的气体传感器的制备与表征

Preparation and Characterization of PEDOT:PSS/TiO Micro/Nanofiber-Based Gas Sensors.

作者信息

Shiu Bing-Chiuan, Liu Yan-Ling, Yuan Qian-Yu, Lou Ching-Wen, Lin Jia-Horng

机构信息

College of Material and Chemical Engineering, Minjiang University, Fuzhou 350108, China.

Fujian Key Laboratory of Novel Functional Fibers and Materials, Minjiang University, Fuzhou 350108, China.

出版信息

Polymers (Basel). 2022 Apr 27;14(9):1780. doi: 10.3390/polym14091780.

Abstract

In this study, we employed electrospinning technology and in situ polymerization to prepare wearable and highly sensitive PVP/PEDOT:PSS/TiO micro/nanofiber gas sensors. PEDOT, PEDOT:PSS, and TiO were prepared via in situ polymerization and tested for characteristic peaks using energy-dispersive X-ray spectroscopy (EDS) and Fourier transform infrared spectroscopy (FT-IR), then characterized using a scanning electron microscope (SEM), a four-point probe resistance measurement, and a gas sensor test system. The gas sensitivity was 3.46-12.06% when ethanol with a concentration between 12.5 ppm and 6250 ppm was measured; 625 ppm of ethanol was used in the gas sensitivity measurements for the PEDOT/composite conductive woven fabrics, PVP/PEDOT:PSS nanofiber membranes, and PVP/PEDOT:PSS/TiO micro/nanofiber gas sensors. The latter exhibited the highest gas sensitivity, which was 5.52% and 2.35% greater than that of the PEDOT/composite conductive woven fabrics and PVP/PEDOT:PSS nanofiber membranes, respectively. In addition, the influence of relative humidity on the performance of the PVP/PEDOT:PSS/TiO micro/nanofiber gas sensors was examined. The electrical sensitivity decreased with a decrease in ethanol concentration. The gas sensitivity exhibited a linear relationship with relative humidity lower than 75%; however, when the relative humidity was higher than 75%, the gas sensitivity showed a highly non-linear correlation. The test results indicated that the PVP/PEDOT:PSS/TiO micro/nanofiber gas sensors were flexible and highly sensitive to gas, qualifying them for use as a wearable gas sensor platform at room temperature. The proposed gas sensors demonstrated vital functions and an innovative design for the development of a smart wearable device.

摘要

在本研究中,我们采用静电纺丝技术和原位聚合方法制备了可穿戴且高灵敏度的PVP/PEDOT:PSS/TiO微纳纤维气体传感器。通过原位聚合制备了PEDOT、PEDOT:PSS和TiO,并使用能量色散X射线光谱(EDS)和傅里叶变换红外光谱(FT-IR)对其特征峰进行了测试,然后使用扫描电子显微镜(SEM)、四点探针电阻测量和气体传感器测试系统对其进行了表征。当测量浓度在12.5 ppm至6250 ppm之间的乙醇时,气体灵敏度为3.46 - 12.06%;在PEDOT/复合导电织物、PVP/PEDOT:PSS纳米纤维膜和PVP/PEDOT:PSS/TiO微纳纤维气体传感器的气体灵敏度测量中使用了625 ppm的乙醇。后者表现出最高的气体灵敏度,分别比PEDOT/复合导电织物和PVP/PEDOT:PSS纳米纤维膜的气体灵敏度高5.52%和2.35%。此外,还研究了相对湿度对PVP/PEDOT:PSS/TiO微纳纤维气体传感器性能的影响。随着乙醇浓度的降低,电灵敏度降低。当相对湿度低于75%时,气体灵敏度与相对湿度呈线性关系;然而,当相对湿度高于75%时,气体灵敏度呈现出高度非线性相关性。测试结果表明,PVP/PEDOT:PSS/TiO微纳纤维气体传感器具有柔韧性且对气体高度敏感,使其有资格在室温下用作可穿戴气体传感器平台。所提出的气体传感器展示了智能可穿戴设备开发的重要功能和创新设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8088/9105644/a3bb13d1cf1e/polymers-14-01780-g001.jpg

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