Hollow zeolite structures formed by crystallization in crosslinked polyacrylamide hydrogels

被引:55
|
作者
Han, Li [1 ,2 ]
Yao, Jianfeng [2 ]
Li, Dan [2 ]
Ho, Jenny [2 ]
Zhang, Xinyi [2 ]
Kong, Chun-Hua [3 ]
Zong, Zhi-Min [1 ]
Wei, Xian-Yong [1 ]
Wang, Huanting [2 ]
机构
[1] China Univ Min & Technol, Sch Chem Engn, Jiangsu 221008, Peoples R China
[2] Monash Univ, Dept Chem Engn, Clayton, Vic 3800, Australia
[3] Univ New S Wales, Electron Microscope Unit, Sydney, NSW 2052, Australia
关键词
D O I
10.1039/b805133j
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hollow zeolite structures including sodalite spheres and hollow zeolite NaA crystals were synthesized by introducing crosslinked polyacrylamide (C-PAM) hydrogels into zeolite synthesis gels. The synthesis gels with weight compositions of 0.8SiO(2) : 1.0Al(2)O(3) : 21.2Na(2)O : 86.0H(2)O : 7.4-28.7 acrylamide (AM) were used to produce hollow sodalite spheres. The synthesized hollow sodalite spheres had diameters of 1-5 mu m and shell thicknesses of 0.5-1 mu m, and the sphere diameters decreased from 5-10 mu m to 1-3 mu m as the amount of C-PAM increased. Hollow zeolite A crystals with sizes of 300-500 nm were grown from the synthesis gel with a weight ratio of 0.8SiO(2) : 1.0Al(2)O(3) : 2.6Na(2)O : 16.4H(2)O : 2.6-3.8AM. The experimental results suggest that the formation of hollow zeolite structures may involve a surface-to-core crystallization process induced by crosslinked polyacrylamide networks.
引用
收藏
页码:3337 / 3341
页数:5
相关论文
共 50 条
  • [31] Transition metal and organic functionalization of hollow zeolite structures
    Kanthasamy, Ramasubramanian
    Barquist, Karna
    Larsen, Sarah C.
    MICROPOROUS AND MESOPOROUS MATERIALS, 2008, 113 (1-3) : 554 - 561
  • [32] Hollow structures by controlled desilication of beta zeolite nanocrystals
    Prates, Ana Rita Morgado
    Chetot, Titouan
    Burel, Laurence
    Pagis, Celine
    Martinez-Franco, Raquel
    Dodin, Mathias
    Farrusseng, David
    Tuel, Alain
    JOURNAL OF SOLID STATE CHEMISTRY, 2020, 281
  • [33] Freezing as a path to build macroporous structures: Superfast responsive polyacrylamide hydrogels
    Dinu, M. Valentina
    Ozmen, M. Murat
    Dragan, E. Stela
    Okay, Oguz
    POLYMER, 2007, 48 (01) : 195 - 204
  • [34] Ionically Crosslinked Thermoresponsive Chitosan Hydrogels formed In Situ: A Conceptual Basis for Deeper Understanding
    Rahmati, Maryam
    Milan, Peiman Brouki
    Samadikuchaksaraei, Ali
    Goodarzi, Vahabodin
    Saeb, Mohammad Reza
    Kargozar, Saeid
    Kaplan, David L.
    Mozafari, Masoud
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2017, 302 (11)
  • [35] Synthesis of crosslinked poly(5-vinyltetrazole) and properties of hydrogels formed on its basis
    Kizhnyaev, V. N.
    Petrova, T. L.
    Pokatilov, F. A.
    Smirnov, V. I.
    POLYMER SCIENCE SERIES B, 2011, 53 (11-12) : 626 - 633
  • [36] Synthesis of crosslinked poly(5-vinyltetrazole) and properties of hydrogels formed on its basis
    V. N. Kizhnyaev
    T. L. Petrova
    F. A. Pokatilov
    V. I. Smirnov
    Polymer Science Series B, 2011, 53 : 626 - 633
  • [37] In situ crosslinked hydrogels formed using Cu(I)-free Huisgen cycloaddition reaction
    Clark, Meredith
    Kiser, Patrick
    POLYMER INTERNATIONAL, 2009, 58 (10) : 1190 - 1195
  • [38] Preparation of Hierachically Crosslinked Poly(acrylamide) Hydrogels by Assistance of Crystallization of Poly(vinyl alcohol)
    Shi, Fu-kuan
    Zhong, Ming
    Zhong, Li-qin
    Liu, Xiao-ying
    Xie, Xu-ming
    ACTA POLYMERICA SINICA, 2017, (03): : 491 - 497
  • [39] Dual crosslinked carboxymethyl cellulose/polyacrylamide interpenetrating hydrogels with highly enhanced mechanical strength and superabsorbent properties
    Jeong, Daham
    Kim, Chulgu
    Kim, Yohan
    Jung, Seunho
    EUROPEAN POLYMER JOURNAL, 2020, 127
  • [40] Zr(IV)-Crosslinked Polyacrylamide/Polyanionic Cellulose Composite Hydrogels with High Strength and Unique Acid Resistance
    Dai, Xiaofu
    Wang, Jianquan
    Teng, Fei
    Shao, Ziqiang
    Huang, Xiaonan
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2019, 57 (15) : 981 - 991