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Anchoring ultrafine Pd nanoparticles and SnO2 nanoparticles on reduced graphene oxide for high-performance room temperature NO2 sensing

机译:锚固超细PD纳米颗粒和SnO2纳米颗粒在氧化物还原石墨烯氧化物上进行高性能室温NO2感应

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In this paper, we demonstrate room-temperature NO2 gas sensors using Pd nanoparticles (NPs) and SnO2 NPs decorated reduced graphene oxide (Pd-SnO2-RGO) hybrids as sensing materials. It is found that ultra fine Pd NPs and SnO2 NPs with particle sizes of 3-5 nm are attached to RGO nanosheets. Compared to SnO2-RGO hybrids, the sensor based on Pd-SnO2-RGO hybrids exhibited higher sensitivity at room temperature, where the response to 1 ppm NO2 was 3.92 with the response time and recovery time being 13 s and 105 s. Moreover, such sensor exhibited excellent selectivity, and low detection limit (50 ppb). In addition to high transport capability of RGO as well as excellent NO2 adsorption ability derived from ultrafine SnO2 NPs and Pd NPs, the superior sensing performances of the hybrids were attributed to the synergetic effect of Pd NPs, SnO2 NPs and RGO. Particularly, the excellent sensing performances were related to high conductivity and catalytic activity of Pd NPs. Finally, the sensing mechanism for NO2 sensing and the reason for enhanced sensing performances by introduction of Pd NPs are also discussed. (C) 2017 Elsevier Inc. All rights reserved.
机译:本文使用Pd纳米颗粒(NPS)和SnO2 NPS装饰了石墨烯氧化物(PD-SnO2-RGO)杂种作为传感材料,展示室温NO2气体传感器。发现具有3-5nm的粒径为3-5nm的超细Pd nps和snO2 nps。与SnO2-RGO杂交体相比,基于PD-SnO2-RGO杂种的传感器在室温下表现出更高的灵敏度,其中对1ppm No2的响应为3.92,响应时间和恢复时间为13 s和105 s。此外,这种传感器表现出优异的选择性和低检测限(50ppb)。除了RGO的高运输能力以及优异的NO 2吸附能力之外,杂交种的优异感测性能归因于PD NPS,SNO2 NPS和RGO的协同作用。特别地,优异的感测性能与PD NP的高导电性和催化活性有关。最后,还讨论了NO2感测的感测机制以及通过引入PD NP来增强感测性能的原因。 (c)2017年Elsevier Inc.保留所有权利。

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