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A novel approach to fabricating a ternary rGO/ZnO/Pt system for high- performance hydrogen sensor at low operating temperatures

机译:在低工作温度下为高性能氢传感器制造三元rGO / ZnO / Pt系统的新颖方法

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摘要

A novel method for the synthesis of a ternary platinum loaded reduced graphene oxide (rGO)/zinc oxide (ZnO) hybrid nanocomposite via a pulsed laser ablation in liquid (PLAL) and direct current (DC) sputtering for a hydrogen sensing application is reported here. The said composite was fabricated to obtain small ZnO nanoparticles with interfacial electric contact without using chemical reagents. Firstly, ZnO nanoparticles were fabricated by the decomposition of zinc peroxide (ZnO2) quantum dots, synthesized by laser ablation of microstructured Zn powder in 3%H2O2 , whereas GO was prepared by the modified Hummer method. Secondly, an rGO/ZnO nanocomposite was prepared via PLAL of ZnO and graphene oxide (GO) in deionized water. Finally, DC sputtering was used to decorate the surface of the rGO/ZnO hybrid with a N thin film to obtain a ternary rGO/ZnO/Pt hybrid nano-composite. Maximum sensing performance was achieved by tuning the thickness of the deposited N layer. According to our study, the Pt-loaded rGO/ZnO gas sensor, with a thickness of 2 nm, showed an excellent response and selectivity towards a low concentration of hydrogen, giving a high response of about 99% (-400 ppm), which was 10 and 5 times higher than those of the pure ZnO, and the rGO/ZnO nanocomposite, respectively. This significantly improved response was mainly attributed to the high surface area of the rGO, the fast spill-over effect of the uniformly coated N nanoparticles, and the formation of a p-n junction between rGO and ZnO nanoparticles. This study indicates that the obtained rGO/ZnO/Pt hybrid nanocomposite is a promising candidate for constructing high-performance H-2 gas sensors.
机译:本文报道了一种通过脉冲激光烧蚀液体(PLAL)和直流(DC)溅射合成三元负载铂的还原氧化石墨烯(rGO)/氧化锌(ZnO)杂化纳米复合材料的新方法,用于氢感测应用。所述复合物被制备为不使用化学试剂而获得具有界面电接触的小的ZnO纳米颗粒。首先,通过微结构化锌粉在3%H2O2中的激光烧蚀合成过氧化锌(ZnO2)量子点分解制备ZnO纳米颗粒,而采用改进的Hummer方法制备GO。其次,在去离子水中通过ZnO和氧化石墨烯(GO)的PLAL制备了rGO / ZnO纳米复合材料。最后,用直流溅射法以N薄膜修饰rGO / ZnO杂化材料的表面,得到三元rGO / ZnO / Pt杂化纳米复合材料。通过调整沉积的N层的厚度可以实现最大的传感性能。根据我们的研究,Pt负载的rGO / ZnO气体传感器的厚度为2 nm,对低浓度的氢气表现出出色的响应和选择性,可提供约99%(-400 ppm)的高响应,分别是纯ZnO和rGO / ZnO纳米复合材料的10倍和5倍。这种显着改善的响应主要归因于rGO的高表面积,均匀涂覆的N纳米颗粒的快速溢出效应,以及rGO和ZnO纳米颗粒之间形成p-n结。这项研究表明,所获得的rGO / ZnO / Pt杂化纳米复合材料是构建高性能H-2气体传感器的有希望的候选者。

著录项

  • 来源
    《Applied Surface Science》 |2019年第15期|616-626|共11页
  • 作者单位

    King Fahd Univ Petr & Minerals, Ctr Res Excellence Nanotechnol CENT, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Ctr Res Excellence Nanotechnol CENT, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Phys Dept, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Ctr Res Excellence Nanotechnol CENT, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Phys Dept, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Chem Dept, Dhahran 31261, Saudi Arabia;

    King Fahd Univ Petr & Minerals, Ctr Res Excellence Nanotechnol CENT, Dhahran 31261, Saudi Arabia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydrogen; Gas sensor; Nanocomposite; Pulsed laser ablation; Sputtering;

    机译:氢气;气体传感器;纳米复合材料;脉冲激光烧蚀;溅射;

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