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Synthesis and Gas Transport Properties of Graphene Oxide Membranes

机译:氧化石墨烯膜的合成及输气性能

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摘要

Graphene oxide membranes have shown promising gas separation characteristics specially for hydrogen that make them of interest for industrial applications. However, the gas transport mechanism for these membranes is unclear due to inconsistent permeation and separation results reported in literature. Graphene oxide membranes made by filtration, the most common synthesis method, contain wrinkles affecting their gas separation characteristics and the method itself is difficult to scale up. Moreover, the production of graphene oxide membranes with fine-tuned interlayer spacing for improved molecular separation is still a challenge. These unsolved issues will affect their potential impact on industrial gas separation applications.;In this study, high quality graphene oxide membranes are synthesized on polyester track etch substrates by different deposition methods and characterized by XRD, SEM, AFM as well as single gas permeation and binary (H2/CO 2) separation experiments. Membranes are made from large graphene oxide sheets of different sizes (33 and 17 micron) using vacuum filtration to shed more light on their transport mechanism. Membranes are made from dilute graphene oxide suspension by easily scalable spray coating technique to minimize extrinsic wrinkle formation. Finally, Brodie's derived graphene oxide sheets were used to prepare membranes with narrow interlayer spacing to improve their (H2/CO2) separation performance.;An inter-sheet and inner-sheet two-pathway model is proposed to explain the permeation and separation results of graphene oxide membranes obtained in this study. At room temperature, large gas molecules (CH4, N 2, and CO2) permeate through inter-sheet pathway of the membranes, exhibiting Knudsen like diffusion characteristics, with the permeance for the small sheet membrane about twice that for the large sheet membrane. The small gases (H2 and He) exhibit much higher permeance, showing significant flow through an inner-sheet pathway, in addition to the flow through the inter-sheet pathway. Membranes prepared by spray coating offer gas characteristics similar to those made by filtration, however using dilute graphene oxide suspension in spray coating will help reduce the formation of extrinsic wrinkles which result in reduction in the porosity of the inter-sheet pathway where the transport of large gas molecules dominates. Brodie's derived graphene oxide membranes showed overall low permeability and significant improvement in in H2 /CO2 selectivity compared to membranes made using Hummers' derived sheets due to smaller interlayer space height of Brodie's sheets (~3 A).
机译:氧化石墨烯膜特别针对氢气显示出令人鼓舞的气体分离特性,这使其在工业应用中受到关注。然而,由于文献报道的不一致的渗透和分离结果,这些膜的气体传输机理尚不清楚。通过过滤(最常见的合成方法)制成的氧化石墨烯膜含有影响其气体分离特性的皱纹,该方法本身难以扩大规模。而且,具有微调的层间间距以改善分子分离的氧化石墨烯膜的生产仍然是挑战。这些未解决的问题将影响它们对工业气体分离应用的潜在影响。在本研究中,通过不同的沉积方法在聚酯轨迹蚀刻基板上合成高质量的氧化石墨烯膜,并通过XRD,SEM,AFM以及单一气体渗透和气相色谱法对其进行表征。二元(H2 / CO 2)分离实验。膜是由不同尺寸(33和17微米)的大型氧化石墨烯片制成的,采用真空过滤以使它们的传输机理更加发光。膜由稀氧化石墨烯悬浮液制成,可通过易于扩展的喷涂技术将外在皱纹的形成降至最低。最后,使用Brodie衍生的氧化石墨烯片材制备了具有较窄层间间距的膜,以改善其(H2 / CO2)分离性能。;提出了一种层间和内层两种路径模型来解释膜的渗透和分离结果在这项研究中获得的氧化石墨烯膜。在室温下,大的气体分子(CH4,N 2和CO2)通过膜的层间途径渗透,表现出类似于努森的扩散特性,小片膜的渗透率约为大片膜的两倍。小气体(H2和He)显示出高得多的磁导率,除了流过板间通道外,还显示出大量流经内板通道。通过喷涂制备的膜具有与过滤相似的气体特性,但是在喷涂中使用稀氧化石墨烯悬浮液将有助于减少外在皱纹的形成,从而减少片内通道的孔隙度,而大孔的传输气体分子占主导地位。与使用Hummers衍生板制成的膜相比,Brodie衍生的氧化石墨烯膜总体上具有较低的渗透性,并且H2 / CO2选择性显着提高,这是因为Brodie's板的层间空间较小(〜3 A)。

著录项

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Chemical engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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