Preparation of a new PVDF membrane with inverse opal structure for high-precision separation

被引:0
|
作者
Fan, Sha [1 ]
He, Wenyu [1 ,3 ]
Liu, Guojin [1 ]
Ma, Wanbin [1 ]
Liu, Gaofeng [2 ]
Wang, Yu [1 ]
Hong, Xinyi [1 ]
Li, Chengcai [1 ,3 ]
Yu, Bin [1 ]
机构
[1] Zhejiang Provincial Key Laboratory of Fiber Materials and Manufacturing Technology, Zhejiang Sci-Tech University, Hangzhou,310018, China
[2] National Innovation Center of Advanced Dyeing & Finishing Technology, Shandong, Tai'an,271000, China
[3] Zhejiang Provincial Innovation Center of Advanced Textile Technology, Shaoxing,312000, China
关键词
Crystal structure - Etching - Fluorine compounds - Inverse problems - Membranes - Microfiltration - Microspheres - Photonic crystals - Pore size - Porous silicon;
D O I
暂无
中图分类号
学科分类号
摘要
Inspired by natural isoporous materials and the highly arranged structure of photonic crystals (PCs), an inverse opal (IO)-structured membrane with a highly interconnected through-hole structure, a high porosity, and a nearly uniform pore size was prepared by multiosmosis method. Silica (SiO2) microspheres were assembled as building blocks into opal crystals, and poly (vinylidene fluoride) (PVDF) acted as the frame material of the membrane. The influencing factors in the fabrication of high-quality opal PCs were studied. Binary PVDF/SiO2 composite PCs were obtained by multiosmosis of a PVDF solution, and the infiltration mechanism was investigated, which indicated that the PVDF polymers were uniformly cured throughout the crystal area to form SiO2/air/PVDF composite PCs until completely infiltrated. Then, the IO-structured membrane was achieved after etching SiO2 microspheres. Different particle sizes of SiO2 microspheres were used to prepare PVDF membranes with various pore sizes. The pure water flux and porosity could reach as high as 5208.71 L m−2h−1 and 83.59%, respectively. The membranes displayed excellent rejection of SiO2 microspheres, almost 100%, and great antifouling performance. This work provided a simple and efficient method for constructing a filtration membrane with IO structure, which hopefully would solve the problems encountered in realizing efficient, high-precision separation. © 2023 The Korean Society of Industrial and Engineering Chemistry
引用
收藏
页码:211 / 226
相关论文
共 50 条
  • [31] Preparation of High-Precision Dimension Seamless Thick-Walled Pipe by New Cold Rolling Process
    Li, Ran
    Zhang, Xuewei
    Zhang, Cheng
    Wang, Jiaming
    Huang, Jinfeng
    METALS, 2022, 12 (10)
  • [32] Northern Main Ethiopian Rift crustal structure from new high-precision gravity data
    Cornwell, D. G.
    MacKenzie, G. D.
    England, R. W.
    Maguire, P. K. H.
    Asfaw, L. M.
    Oluma, B.
    AFAR VOLCANIC PROVINCE WITHIN THE EAST AFRICAN RIFT SYSTEM, 2006, 259 : 307 - +
  • [33] A New, Reversed Zinc-Finger Nuclease Structure for High-Precision Therapeutic Genome Engineering
    Paschon, David E.
    Lussier, Stephanie
    Truong, Lynn
    Gandhi, Nimisha
    Hinkley, Sarah
    Xia, Danny
    Li, Patrick W.
    Lee, Gary K.
    Miller, Jeffrey C.
    Zhang, Lei
    Holmes, Michael C.
    Rebar, Edward J.
    MOLECULAR THERAPY, 2017, 25 (05) : 81 - 81
  • [34] HIGH-PRECISION SYSTEMS REQUIRE HIGH-PRECISION BLUEPRINTS - A NEW VIEW REGARDING THE FORMATION OF CONNECTIONS IN THE MAMMALIAN VISUAL-SYSTEM
    CHALUPA, LM
    DREHER, B
    JOURNAL OF COGNITIVE NEUROSCIENCE, 1991, 3 (03) : 209 - 219
  • [35] RELEVANCE OF HIGH-PRECISION SPECTROSCOPY IN NUCLEAR-STRUCTURE RESEARCH
    BORNER, HG
    BARREAU, G
    KERR, SA
    SCHRECKENBACH, K
    INSTITUTE OF PHYSICS CONFERENCE SERIES, 1982, (62): : 121 - 132
  • [36] High-precision turbulence wavefront reconstruction based on Transformer structure
    Feng Jia-hao
    Hu Qi-li
    Jiang Lu
    Yang Yan-yan
    Hua Sheng-xiao
    Wu Jing-jing
    Hu Li-fa
    CHINESE JOURNAL OF LIQUID CRYSTALS AND DISPLAYS, 2023, 38 (06) : 798 - 808
  • [37] High-precision structure fabrication based on an etching resistance layer
    Zhang, Man
    Deng, Qiling
    Shi, Lifang
    Cao, Axiu
    Pang, Hui
    Liu, Xin
    Wang, Jiazhou
    Hu, Song
    ADVANCED OPTICAL MANUFACTURING TECHNOLOGIES, 2016, 9683
  • [38] AMBiT: A programme for high-precision relativistic atomic structure calculations
    Kahl, E. V.
    Berengut, J. C.
    COMPUTER PHYSICS COMMUNICATIONS, 2019, 238 : 232 - 243
  • [39] High-precision calculation of the hyperfine structure of the HD+ ion
    Bakalov, Dimitar
    Korobov, Vladimir I.
    Schiller, Stephan
    PHYSICAL REVIEW LETTERS, 2006, 97 (24)
  • [40] High-precision measurement of steel structure based on LiDAR and UAV
    Guo M.
    Sun M.-X.
    Huang M.
    Yan B.-N.
    Zhou Y.-Q.
    Zhao Y.-S.
    Guangxue Jingmi Gongcheng/Optics and Precision Engineering, 2021, 29 (05): : 989 - 998