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Synthesis-Structure-Property Relationships for Hyperbranched Aminosilica CO_2 Adsorbents

机译:超支化氨基二氧化硅CO_2吸附剂的合成-结构-性能关系

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摘要

Hyperbranched aminosilica (HAS) adsorbents are prepared via the ring-opening polymerization of aziridine in the presence of mesoporous silica SBA-15 support The aminopolymers are covalently bound to the silica support and capture CO_2 reversibly in a temperature swing process. Here, a range of HAS materials are prepared with different organic loadings. The effects of organic loading on the structural properties and CO_2 adsorption properties of the resultant hybrid materials are examined. The residual porosity in the HAS adsorbents after organic loading, as well as the molecular weights and degrees of branching for the separated aminopolymers, are determined to draw a relationship between adsorbent structure and performance- Humid adsorption working capacities and apparent adsorption kinetics are determined from experiments in a packed-bed flow system monitored by mass spectrometry. Dry adsorption isotherms are presented for one HAS adsorbent with a high amine loading at 35 and 75 ℃. These combined results establish the relationships between adsorbent synthesis, structure, and CO_2 adsorption properties of the family of HAS materials.
机译:通过在中孔二氧化硅SBA-15载体存在下通过氮丙啶开环聚合制备超支化氨基二氧化硅(HAS)吸附剂。氨基聚合物与二氧化硅载体共价键合,并在变温过程中可逆地捕获CO_2。在这里,准备了一系列具有不同有机负荷的HAS材料。研究了有机负载对所得杂化材料的结构性能和CO_2吸附性能的影响。确定有机负载后HAS吸附剂中的残留孔隙率,以及分离的氨基聚合物的分子量和支化度,以得出吸附剂结构与性能之间的关系。通过实验确定湿式吸附工作容量和表观吸附动力学在质谱监测的填充床流系统中提出了一种在35和75℃下胺含量高的HAS吸附剂的干吸附等温线。这些综合结果建立了HAS材料系列的吸附剂合成,结构和CO_2吸附性能之间的关系。

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  • 来源
    《Advanced Functional Materials》 |2009年第23期|3821-3832|共12页
  • 作者单位

    School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive, Atlanta, GA 30332 (USA);

    School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive, Atlanta, GA 30332 (USA);

    School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive, Atlanta, GA 30332 (USA);

    School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive, Atlanta, GA 30332 (USA);

    U.S. Department of Energy National Energy Technology Laboratory 626 Cochrans Mill Road, Pittsburgh, PA 15236 (USA);

    U.S. Department of Energy National Energy Technology Laboratory 626 Cochrans Mill Road, Pittsburgh, PA 15236 (USA);

    School of Chemical & Biomolecular Engineering Georgia Institute of Technology 311 Ferst Drive, Atlanta, GA 30332 (USA);

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