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用于室温下增强检测NH₃的多孔还原氧化石墨烯(rGO)/WO纳米复合材料。

Porous reduced graphene oxide (rGO)/WO nanocomposites for the enhanced detection of NH at room temperature.

作者信息

Jeevitha G, Abhinayaa R, Mangalaraj D, Ponpandian N, Meena P, Mounasamy Veena, Madanagurusamy Sridharan

机构信息

Department of Nanoscience and Technology, Bharathiar University Coimbatore 641 046 India

Department of Physics, PSGR Krishnammal College for Women Coimbatore 641 004 India.

出版信息

Nanoscale Adv. 2019 Feb 27;1(5):1799-1811. doi: 10.1039/c9na00048h. eCollection 2019 May 15.

Abstract

Incorporation of reduced graphene oxide (rGO) modifies the properties of semiconducting metal oxide nanoparticles and makes it possible to tune the surface area and pore size to optimum values, which in turn improves their gas sensing properties. In this work, to improve the ammonia (NH) gas sensing characteristics, reduced graphene oxide (rGO) was incorporated into tungsten oxide (WO) nanospheres using a simple ultrasonication method. The rGO-WO nanocomposites exhibited porous nanosheets with nanospherical WO as observed with field-emission scanning electron microscopy (FE-SEM). The oxidation state of the rGO-WO nanocomposite was determined using X-ray photoelectron spectroscopy (XPS). Three ratios of (1, 5 and 10% rGO/WO) nanocomposites and pure WO showed good selectivity towards NH at 10-100 ppm, and more remarkably at room temperature in the range of about 32-35 °C and at a relative humidity (RH) of 55%. The limit of detection (LOD) of the synthesized rGO-WO nanocomposites was 1.14 ppm, which will highly favour low detection ranges of NH. The sensor response was 1.5 times higher than that of the bare WO nanospheres. The sensors showed excellent selectivity, ultrafast response/recovery times (18/24 s), reproducibility and stability even after one month of their preparation. We believe that metal oxides using the rGO modifier can improve the sensitivity and reduce the LOD towards NH and can be used effectively in real-time environmental monitoring.

摘要

还原氧化石墨烯(rGO)的掺入改变了半导体金属氧化物纳米颗粒的性质,并使得将表面积和孔径调节到最佳值成为可能,这反过来又改善了它们的气敏性能。在这项工作中,为了改善氨(NH₃)气敏特性,采用简单的超声处理方法将还原氧化石墨烯(rGO)掺入氧化钨(WO₃)纳米球中。用场发射扫描电子显微镜(FE-SEM)观察发现,rGO-WO₃纳米复合材料呈现出带有纳米球形WO₃的多孔纳米片。使用X射线光电子能谱(XPS)确定了rGO-WO₃纳米复合材料的氧化态。三种比例(1%、5%和10% rGO/WO₃)的纳米复合材料以及纯WO₃在10 - 100 ppm的NH₃浓度下表现出良好的选择性,在约32 - 35 °C的室温以及55%的相对湿度(RH)下表现更为显著。合成的rGO-WO₃纳米复合材料的检测限(LOD)为1.14 ppm,这将非常有利于低浓度NH₃的检测范围。传感器响应比裸WO₃纳米球高1.5倍。这些传感器即使在制备一个月后仍表现出优异的选择性、超快的响应/恢复时间(18/24 s)、重现性和稳定性。我们相信,使用rGO改性剂的金属氧化物可以提高对NH₃的灵敏度并降低检测限,并且可以有效地用于实时环境监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f2a/9418995/a110a40f068a/c9na00048h-f1.jpg

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