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基于磁场排列的三维FeO@SiO@还原氧化石墨烯球的多通道室温气体传感器

Multichannel Room-Temperature Gas Sensors Based on Magnetic-Field-Aligned 3D FeO@SiO@Reduced Graphene Oxide Spheres.

作者信息

Ma Defu, Su Yanjie, Tian Tian, Yin Huan, Zou Cheng, Huo Tingting, Hu Nantao, Yang Zhi, Zhang Yafei

机构信息

Key Laboratory for Thin Film and Microfabrication (Ministry of Education), Department of Micro/Nano Electronics, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Aug 19;12(33):37418-37426. doi: 10.1021/acsami.0c05574. Epub 2020 Aug 10.

Abstract

Reduced graphene oxide (rGO) is considered as one of the ideal sensing materials for high-performance room-temperature gas sensors owing to its large specific surface areas, numerous active sites, and high carrier mobility. However, the sensing performance cannot be maximized due to the inevitable sheet stacking and agglomeration. Herein, we firstdemonstrate multichannel room-temperature gas sensors using magnetic-field-induced alignment of three-dimensional (3D) FeO@SiO@rGO core-shell spheres. Moreover, the sensing channels composed of spheres can be tailored by changing the concentration of spheres and the magnetic field. Experimental results suggest that the multichannel 3D FeO@SiO@rGO sensor exhibits an ultrahigh sensitivity of 34.41 with a good response stability and high selectivity toward 5 ppm of NO at room temperature, which is ca. 7.96 times higher than that of the random 3D rGO gas sensor. The high performance can be mainly ascribed to a full utilization of their large specific surface area and active sites of rGO nanosheets. We believe that our results not only contribute to the development of high-performance rGO-based sensing devices, but also provide a general approach to maximize the sensing performance of other nanomaterials.

摘要

还原氧化石墨烯(rGO)因其大比表面积、众多活性位点和高载流子迁移率,被认为是高性能室温气体传感器的理想传感材料之一。然而,由于不可避免的片层堆叠和团聚,其传感性能无法得到最大化。在此,我们首次展示了利用三维(3D)FeO@SiO@rGO核壳球的磁场诱导排列制备的多通道室温气体传感器。此外,由球体组成的传感通道可以通过改变球体浓度和磁场来进行调整。实验结果表明,多通道3D FeO@SiO@rGO传感器在室温下对5 ppm的NO表现出34.41的超高灵敏度、良好的响应稳定性和高选择性,这大约是随机3D rGO气体传感器的7.96倍。其高性能主要归因于对rGO纳米片的大比表面积和活性位点的充分利用。我们相信,我们的结果不仅有助于高性能rGO基传感装置的发展,也为最大化其他纳米材料的传感性能提供了一种通用方法。

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