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    Fixed-bed adsorption separation of xylene isomers over sio2/silicallite-1 core-shell adsorbents

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    Type
    Article
    Authors
    Khan, Easir A.
    Rajendran, Arvind
    Lai, Zhiping cc
    KAUST Department
    Advanced Membranes and Porous Materials Research Center
    Chemical Engineering Program
    Physical Science and Engineering (PSE) Division
    Date
    2013-12-29
    Permanent link to this record
    http://hdl.handle.net/10754/563163
    
    Metadata
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    Abstract
    SiO2/Silicalite-1 core-shell material has been demonstrated as potential shape selective adsorbent in gas phase separation of p-xylene from a mixture of p/o-xylene isomers. The core-shell composite comprised of large silica core and thin polycrystalline silicalite-1 shell which was synthesized via a self-assembly of silicalite-1 nanocrystals on core silica surface followed by a secondary seeded growth method. The core materials, SiO2 used in this study has mesoporosity with an average pore diameter of 60Å and hence offers no shape selectivity for xylene isomers. However, the shell, silicalite-1 contains rigid pore structures and preferentially adsorbs p-xylene from their isomers mixtures. A series of adsorption fixed bed breakthrough adsorption/desorption experiment was performed to obtain the equilibrium isotherms and adsorption isotherm parameters of xylene isomers. The equilibrium isotherms of xylene isomers follow the Langmuir's model. A chromatographic adsorption model has been used to describe the fixed-bed breakthrough profiles of xylene isomers. The model has successfully predicted the responses of the binary mixtures of p/o-xylene isomers. The SiO2/silicalite-1 core-shell adsorbents have shown para-selectivity as high as 15. © Bangladesh Uni. of Engg. & Tech.
    Citation
    Khan, E. A., Rajendran, A., & Lai, Z. (2013). Fixed-Bed Adsorption Separation Of Xylene Isomers over SiO2/Silicallite-1 Core-Shell Adsorbents. Chemical Engineering Research Bulletin, 16(1). doi:10.3329/cerb.v16i1.17470
    Publisher
    Bangladesh Journals Online (JOL)
    Journal
    Chemical Engineering Research Bulletin
    DOI
    10.3329/cerb.v16i1.17470
    ae974a485f413a2113503eed53cd6c53
    10.3329/cerb.v16i1.17470
    Scopus Count
    Collections
    Articles; Advanced Membranes and Porous Materials Research Center; Physical Science and Engineering (PSE) Division; Chemical Engineering Program

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