Luo Guifang, Xie Lili, He Meng, Jaisutti Rawat, Zhu Zhigang
School of Environmental and Materials Engineering, College of Engineering, Shanghai Polytechnic University, Shanghai, 201209, People's Republic of China.
Shanghai Engineering Research Center of Advanced Thermal Functional Materials, Shanghai Polytechnic University, Shanghai, 201209, People's Republic of China.
Nanotechnology. 2021 May 3;32(30). doi: 10.1088/1361-6528/abf455.
A flexible fabric gas sensor for the detection of sub-ppm-level NHis reported in this paper. The reduced graphene oxide (rGO)-polyaniline (PANI) nanocomposite was successfully coated on cotton thread via anpolymerization technique. The morphology, microstructure and composition were analyzed by field-emission scanning electron microscope, x-ray diffraction, Fourier transform infrared spectroscopy and Raman spectroscopy. Furthermore, we have studied the responses of the rGO-PANI nanocomposite-based flexible sensors for the detection of NHvarying from 1-100 ppm, operated at 22 °C. At the optimized concentration of rGO, the response of these sensors increased by 4-5 times in comparison with the pristine rGO and PANI. These flexible sensors exhibited fast response, remarkable long-term stability, good selectivity and a low detection limit. The sensing mechanism for the high sensing performance has been thoroughly discussed and it is mainly due to the distinctive 1D fiber structure, the formation of a p-p heterojunction between the rGO nanosheets and PANI. The rGO-PANI composite-based fabric sensor with low power consumption is a potential flexible electronic device for the detection of NH.
本文报道了一种用于检测亚ppm级氨气的柔性织物气体传感器。通过原位聚合技术成功地将还原氧化石墨烯(rGO)-聚苯胺(PANI)纳米复合材料涂覆在棉线上。用场发射扫描电子显微镜、X射线衍射、傅里叶变换红外光谱和拉曼光谱对其形貌、微观结构和组成进行了分析。此外,我们还研究了基于rGO-PANI纳米复合材料的柔性传感器在22℃下对1-100 ppm氨气检测的响应。在rGO的优化浓度下,这些传感器的响应与原始rGO和PANI相比提高了4-5倍。这些柔性传感器表现出快速响应、显著的长期稳定性、良好的选择性和低检测限。对高传感性能的传感机制进行了深入讨论,这主要归因于独特的一维纤维结构以及rGO纳米片与PANI之间形成的p-p异质结。基于rGO-PANI复合材料的织物传感器功耗低,是一种用于检测氨气的潜在柔性电子器件。