Preparation Methods of Polymer/Metal-Organic Frameworks Composite Membrane and Advances in Special Separation Applications

被引:0
|
作者
Ge S. [1 ]
Wang C. [1 ,2 ]
Zheng W. [1 ]
Fu M. [1 ]
Xiao C. [1 ,2 ]
机构
[1] School of Textile and Fashion, Shanghai University of Engineering Science, Shanghai
[2] State Key Laboratory of Separation Membrane and Membrane Processes, Tiangong University, Tianjin
关键词
in- situ growth; interfacial polymerization; metal- organic frameworks; polymer membranes; special separations;
D O I
10.16865/j.cnki.1000-7555.2023.0031
中图分类号
学科分类号
摘要
S: Metal-organic frameworks (MOFs) materials have become a hot topic of research at home and abroad in recent years due to their high porosity, large specific surface area and easily adjustable pore structure. The introduction of MOFs as nanoparticle additives into polymeric separation membranes can enable polymeric separation membranes to obtain high flux and retention rates simultaneously in special wastewater treatment, which is expected to break the Trade- off effect between permeability and selectivity of traditional separation membranes. This paper reviewed the properties of different types of MOFs commonly used for organic membrane doping, focusing on the preparation and characteristics of polymer/MOFs composite membranes by in-situ growth, co-blending and interfacial polymerization, and briefly discussed the applications of the resulting polymer/MOFs composite membranes in special separation fields such as heavy metal ion wastewater, organic dyes, seawater desalination. In addition, possible opportunities and challenges for the further development of polymer/MOFs composite membranes were also pointed out. © 2023 Chengdu University of Science and Technology. All rights reserved.
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页码:177 / 183
页数:6
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  • [1] Chen Y P, Wu C, Ma W X, Et al., Research progress of sewage treatment technology, Advanced Materials Research, 726, pp. 2576-2579, (2013)
  • [2] Shannon M A, Bohn P W, Elimelech M, Et al., Science and technology for water purification in the coming decades, Nature, 452, pp. 301-310, (2008)
  • [3] Yu F, Zhang X Y, Zhu H L, Et al., Application of self-adhesive zirconium- based metal- organic framework materials in dichromate ions adsorption, Polymer Materials Science & Engineering, 37, 1, pp. 88-94, (2021)
  • [4] Li W, Meng Q, Li X, Et al., Non- activation ZnO array as a buffering layer to fabricate strongly adhesive metal – organic framework/PVDF hollow fiber membranes, Chemical Communications, 50, pp. 9711-9713, (2014)
  • [5] He Q, Zhan F, Wang H, Et al., Recent progress of industrial preparation of metal – organic frameworks: synthesis strategies and outlook, Materials Today Sustainability, 17, (2022)
  • [6] Li H, Eddaoudi M, O'keeffe M, Et al., Design and synthesis of an exceptionally stable and highly porous metal-organic framework, Nature, 402, pp. 276-279, (1999)
  • [7] Ferey G, Mellot- Draznieks C, Serre C, Et al., A chromium terephthalate-based solid with unusually large pore volumes and surface area, Science, 309, pp. 2040-2042, (2005)
  • [8] Haque E, Lee J E, Jang I T, Et al., Adsorptive removal of methyl orange from aqueous solution with metal- organic frameworks, porous chromium- benzenedicarboxylates, Journal of Hazardous Materials, 181, pp. 535-542, (2010)
  • [9] Zhao T, Zhu H, Dong M, Et al., Low- temperature and additive-free synthesis of spherical MIL- 101 (Cr) with enhanced dye adsorption performance, Inorganics, 10, (2022)
  • [10] Cavka J H, Jakobsen S, Olsbye U, Et al., A new zirconium inorganic building brick forming metal organic frameworks with exceptional stability, Journal of the American Chemical Society, 130, pp. 13850-13851, (2008)