Ionic Liquid-Reduced Graphene Oxide Membrane with Enhanced Stability for Water Purification

被引:29
作者
Zambare, Rahul S. [2 ,4 ,5 ]
Song, Xiaoxiao [1 ]
Bhuvana, S. [2 ]
Tang, Chuyang Y. [3 ]
Prince, J. S. Antony [2 ]
Nemade, Parag R. [4 ]
机构
[1] Zhejiang Univ Technol, Ocean Coll, Ctr Membrane & Water Sci & Technol, Hangzhou 310014, Peoples R China
[2] Ngee Ann Polytech, Environm & Water Technol Ctr Innovat EWTCOI, Singapore 599489, Singapore
[3] Univ Hong Kong, Dept Civil Engn, Hong Kong 999077, Peoples R China
[4] Inst Chem Technol ICT, Dept Chem Engn, Mumbai 400019, India
[5] Natl Univ Singapore, Ctr Adv Mat 2D, Singapore 117546, Singapore
基金
新加坡国家研究基金会;
关键词
graphene oxide; methylimidazolium ionic liquid; graphene oxide membrane; salt rejection; dye rejection; NANOFILTRATION MEMBRANES; SEPARATION; HYDROPHILICITY; FABRICATION; RETENTION; REJECTION; REMOVAL; FILM;
D O I
10.1021/acsami.2c12488
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
There has been a growing interest in water purification by graphene oxide (GO) laminate membranes due to their exceptional hydrophilicity, high throughput, and extraordinary separation performance originating from their twodimensional and well-defined nanostructure. However, the swelling and stability in an aqueous environment are areas of concern for the GO laminate membranes. Here, a novel methylimidazolium ionic liquid-reduced GO (mimG)-assembled GO laminate membrane (mimG-GO) with remarkable stability was fabricated by a vacuum assisted strategy for water purification. Methylimidazolium-based ionic liquid-reduced graphene oxide (mimG) was prepared by a facile nucleophilic ring-opening mechanism. Fabricated membranes were thoroughly characterized for stability, structural, permeance, and rejection properties in an aqueous environment. A combination of cationic mimG and GO nanosheets improves membrane stability in the aqueous environment via cation-pi interactions and creates nanofluidic channels for facile water transport while yielding significant enhancement in the salt and dye separation performance. The pore size and the number of nanofluidic channels were precisely controlled via material deposition and laminate thickness to remove salts from water. The mimG-GO laminate membrane containing 72.2 mg m(-2) deposition showed a permeance of 14.9 LMH bar(-1), 50% higher than 9.7 LMH bar(-1) of the neat GO laminate membrane, in addition to an increase in Na2SO4 salt rejection from 46.6 to 77.4%, overcoming the flux-rejection trade-off. The mimG-GO laminate membrane also rejected various anionic dyes (i.e., 99.9% for direct red 80 (DR 80), 96.8% for reactive black 5 (RB 5), and 91.4% for methyl orange (MO)). The mimG-GO laminate membrane containing 361.0 mg m(-2) deposition showed the highest rejection for Na2SO4 (92.1%) and 99.9% rejection for DR 80, 99.0% rejection for RB 5, and 98.1% rejection for MO dyes keeping a flux of 2.6 LMH bar(-1). Partial reduction and covalent grafting of ionic liquid moieties on GO helped to enhance the cation-pi interaction between GO laminates, which showed enhanced stability, frictionless water transport, with high salt and dye rejection. Moreover, a simultaneous improvement in water permeance and solute rejection reveals the great potential of ionic liquid-functionalized GO laminate membranes for water-based applications.
引用
收藏
页码:43339 / 43353
页数:15
相关论文
共 52 条
  • [1] Abraham J, 2017, NAT NANOTECHNOL, V12, P546, DOI [10.1038/nnano.2017.21, 10.1038/NNANO.2017.21]
  • [2] Retention of a wide variety of organic pollutants by different nanofiltration/reverse osmosis membranes: controlling parameters of process
    Agenson, KO
    Oh, JI
    Urase, T
    [J]. JOURNAL OF MEMBRANE SCIENCE, 2003, 225 (1-2) : 91 - 103
  • [3] Nanofriction of Graphene/lonic Liquid-Infused Block Copolymer Homoporous Membranes
    An, Rong
    Fan, Pengpeng
    Yan, Nina
    Ji, Qingmin
    Sunkulp, Goel
    Wang, Yong
    [J]. LANGMUIR, 2017, 33 (42) : 11590 - 11602
  • [4] Fabrication of the reduced preoxidized graphene-based nanofiltration membranes with tunable porosity and good performance
    Chang, Yanhong
    Shen, Yudi
    Kong, Debin
    Ning, Jing
    Xiao, Zhichang
    Liang, Jiaxu
    Zhi, Linjie
    [J]. RSC ADVANCES, 2017, 7 (05) : 2544 - 2549
  • [5] A reduced graphene oxide nanofiltration membrane intercalated by well-dispersed carbon nanotubes for drinking water purification
    Chen, Xianfu
    Qiu, Minghui
    Ding, Hao
    Fu, Kaiyun
    Fan, Yiqun
    [J]. NANOSCALE, 2016, 8 (10) : 5696 - 5705
  • [6] Reduced Holey Graphene Oxide Membranes for Desalination with Improved Water Permeance
    Chen, Xiaoyi
    Feng, Zhihao
    Gohil, Janavi
    Stafford, Christopher M.
    Dai, Ning
    Huang, Liang
    Lin, Haiqing
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (01) : 1387 - 1394
  • [7] Mechanism of water transport in graphene oxide laminates
    Deng, Junjiao
    You, Yi
    Bustamante, Heriberto
    Sahajwalla, Veena
    Joshi, Rakesh K.
    [J]. CHEMICAL SCIENCE, 2017, 8 (03) : 1701 - 1704
  • [8] Role of graphene oxide as a heterogeneous acid catalyst and benign oxidant for synthesis of benzimidazoles and benzothiazoles
    Dhopte, Kiran B.
    Zambare, Rahul S.
    Patwardhan, Anand V.
    Nemade, Parag R.
    [J]. RSC ADVANCES, 2016, 6 (10): : 8164 - 8172
  • [9] Pristine Graphite Oxide
    Dimiev, Ayrat
    Kosynkin, Dmitry V.
    Alemany, Lawrence B.
    Chaguine, Pavel
    Tour, James M.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2012, 134 (05) : 2815 - 2822
  • [10] The chemistry of graphene oxide
    Dreyer, Daniel R.
    Park, Sungjin
    Bielawski, Christopher W.
    Ruoff, Rodney S.
    [J]. CHEMICAL SOCIETY REVIEWS, 2010, 39 (01) : 228 - 240