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Fabrication of Graphene Aerogels with Heavily Loaded Metallic Nanoparticles

机译:重载金属纳米粒子的石墨烯气凝胶的制备

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摘要

Natural biomaterials with hierarchical structures that enable extraordinary capability of detecting chemicals have inspired the interest in producing materials that can mimic these natural structures. This study reports the fabrication of hierarchically-structured, reduced graphene oxide (rGO) aerogels with heavily loaded palladium (Pd), platinum (Pt), nickel (Ni), and tin (Sn) metallic nanoparticles. Metal salts chelated with ethylenediaminetetraacetic acid (EDTA) were mixed with graphene oxide (GO) and then freeze-dried. The subsequent reduction produces rGO/metal nanoparticle aerogels. SEM and EDS results indicated that a loading of 59, 67, 39, and 46 wt % of Pd, Pt, Ni, and Sn nanoparticles was achieved. Pd/rGO aerogels of different Pd nanoparticle concentrations were exposed to H2 gas to monitor the resistance change of the composites. The results suggest that rGO aerogels can achieve a higher nanoparticle loading by using chelation to minimize electrostatic interactions between metal ions and GO. Higher loading of Pd nanoparticles in graphene aerogels lead to improved hydrogen gas sensing performance.
机译:具有层次结构的天然生物材料具有出色的化学检测能力,激发了人们对生产可模仿这些天然结构的材料的兴趣。这项研究报告了具有重载钯(Pd),铂(Pt),镍(Ni)和锡(Sn)金属纳米粒子的分层结构的还原型氧化石墨烯(rGO)气凝胶的制造。将与乙二胺四乙酸(EDTA)螯合的金属盐与氧化石墨烯(GO)混合,然后冷冻干燥。随后的还原产生rGO /金属纳米颗粒气凝胶。 SEM和EDS结果表明,Pd,Pt,Ni和Sn纳米颗粒的负载量分别为59、67、39和46 wt%。将不同Pd纳米颗粒浓度的Pd / rGO气凝胶暴露于H2气体中以监测复合材料的电阻变化。结果表明,rGO气凝胶可通过使用螯合作用使金属离子和GO之间的静电相互作用最小化,从而获得更高的纳米颗粒负载量。石墨烯气凝胶中Pd纳米颗粒的较高负载导致改进的氢气感测性能。

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