224
Views
0
CrossRef citations to date
0
Altmetric
Articles

Improvement of heavy metal separation performance by positively charged small-sized graphene oxide membrane

ORCID Icon, &
Pages 2471-2485 | Received 07 Nov 2022, Accepted 25 Jan 2023, Published online: 12 Feb 2023

References

  • Liu Q, Jia Z, Li S, et al. Assessment of heavy metal pollution, distribution and quantitative source apportionment in surface sediments along a partially mixed estuary (Modaomen, China). Chemosphere. 2019;225:829–838.
  • Qu L, Huang H, Xia F, et al. Risk analysis of heavy metal concentration in surface waters across the rural-urban interface of the Wen-Rui Tang River, China. Environ Pollut. 2018;237:639–649.
  • Yin S, Feng C, Li Y, et al. Heavy metal pollution in the surface water of the Yangtze Estuary: A 5-year follow-up study. Chemosphere. 2015;138:718–725.
  • Saha R, Nandi R, Saha B. Sources and toxicity of hexavalent chromium. J Coord Chem. 2011;64:1782–1806.
  • Zhang H, Reynolds M. Cadmium exposure in living organisms: a short review. Sci Total Environ. 2019;678:761–767.
  • Takaoka S. Minamata disease at present. Epidemiology. 2011;22:S100.
  • Zhang S, Peh MH, Thong Z, et al. Thin film interfacial cross-linking approach to fabricate a chitosan rejecting layer over poly(ether sulfone) support for heavy metal removal. Ind Eng Chem Res. 2015;54:472–479.
  • Gao J, Sun S, Zhu W, et al. Chelating polymer modified P84 nanofiltration (NF) hollow fiber membranes for high efficient heavy metal removal. Water Res. 2014;63:252–261.
  • Lee KP, Arnot TC, Mattia D. A review of reverse osmosis membrane materials for desalination—development to date and future potential. J Membrane Sci. 2011;370:1–22.
  • Park HB, Kamcev J, Robeson LM, et al. Maximizing the right stuff: the trade-off between membrane permeability and selectivity. Science. 2017;356:1137–1146.
  • Van der Bruggen B, Vandecasteele C. Distillation vs. membrane filtration: overview of process evolutions in seawater desalination. Desalination. 2002;143:207–218.
  • Geise GM, Park HB, Sagle AC, et al. Water permeability and water/salt selectivity tradeoff in polymers for desalination. J Membrane Sci. 2011;369:130–138.
  • Peng Lee K, Mattia D. Monolithic nanoporous alumina membranes for ultrafiltration applications: characterization, selectivity–permeability analysis and fouling studies. J Membrane Sci. 2013;435:52–61.
  • Tsoukleri G, Parthenios J, Papagelis K, et al. Subjecting a graphene monolayer to tension and compression. Small. 2009;5:2397–2402.
  • Lee C, Wei X, Kysar JW, et al. Measurement of the elastic properties and intrinsic strength of monolayer graphene. Science. 2008;321:385–388.
  • Wang H, Yuan X, Wu Y, et al. Graphene-based materials: fabrication, characterization and application for the decontamination of wastewater and wastegas and hydrogen storage/generation. Adv Colloid Interfac. 2013;195-196:19–40.
  • Kumar A, Sharma K, Dixit AR. A review of the mechanical and thermal properties of graphene and its hybrid polymer nanocomposites for structural applications. J Mater Sci. 2019;54:5992–6026.
  • Dreyer DR, Park S, Bielawski CW, et al. The chemistry of graphene oxide. Chem Soc Rev. 2010;39:228–240.
  • Hernández Rosas JJ, Ramírez Gutiérrez RE, Escobedo-Morales A, et al. First principles calculations of the electronic and chemical properties of graphene, graphane, and graphene oxide. J Mol Model. 2011;17:1133–1139.
  • Wang S, Fan Z, Cui Y, et al. Fracture behaviors of brittle and ductile 2D carbon structures under uniaxial tensile stress. Carbon N Y. 2017;111:486–492.
  • Wang S, Yang B, Chen H, et al. Reconfiguring graphene for high-performance metal-ion battery anodes. Energy Storage Mater. 2019;16:619–624.
  • Wang S, Yang B, Chen H, et al. Popgraphene: a new 2D planar carbon allotrope composed of 5–8–5 carbon rings for high-performance lithium-ion battery anodes from bottom-up programming. J Mater Chem A. 2018;6:6815–6821.
  • Botas C, Álvarez P, Blanco P, et al. Graphene materials with different structures prepared from the same graphite by the Hummers and Brodie methods. Carbon N Y. 2013;65:156–164.
  • Guerrero-Contreras J, Caballero-Briones F. Graphene oxide powders with different oxidation degree, prepared by synthesis variations of the Hummers method. Mater Chem Phys. 2015;153:209–220.
  • Muzyka R, Kwoka M, Smędowski A, et al. Oxidation of graphite by different modified Hummers methods. New Carbon Mater. 2017;32:15–20.
  • Eda G, Fanchini G, Chhowalla M. Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat Nanotechnol. 2008;3:270–274.
  • Mattevi C, Eda G, Agnoli S, et al. Evolution of electrical, chemical, and structural properties of transparent and conducting chemically derived graphene thin films. Adv Funct Mater. 2009;19:2577–2583.
  • Schniepp HC, Li JL, McAllister MJ, et al. Functionalized single graphene sheets derived from splitting graphite oxide. J Phys Chem B. 2006;110:8535–8539.
  • Robinson JT, Zalalutdinov M, Baldwin JW, et al. Wafer-scale reduced graphene oxide films for nanomechanical devices. Nano Lett. 2008;8:3441–3445.
  • Song N, Gao X, Ma Z, et al. A review of graphene-based separation membrane: materials, characteristics, preparation and applications. Desalination. 2018;437:59–72.
  • Liu M, Wang J, Guo J, et al. Graphene oxide/cross-linked polyimide (GO/CLPI) composite membranes for organic solvent nanofiltration. Chem Eng Res Des. 2019;146:182–189.
  • Zhang N, Yu H, Cui H, et al. Bio-inspired molecular bridge anchoring GO laminates onto PAN substrate for molecular separation. Advanced Membranes. 2022;2:100034.
  • Liu M, Guo J, Japip S, et al. One-step enhancement of solvent transport, stability and photocatalytic properties of graphene oxide/polyimide membranes with multifunctional cross-linkers. J Mater Chem A. 2019;7:3170–3178.
  • Zheng B, Chu X, Li H, et al. Layered graphene oxide membranes functioned by amino acids for efficient separation of metal ions. Appl Surf Sci. 2021;546:149145.
  • Zheng B, Tian Y, Jia S, et al. Molecular dynamics study on applying layered graphene oxide membranes for separating cadmium ions from water. J Membrane Sci. 2020;603:117996.
  • Zheng B, Chu X, Peng Z, et al. Improving the separation performance for heavy metals by optimizing the structure of multilayered GO membrane. J Mol Liq. 2023;370:121071.
  • Yeh C, Raidongia K, Shao J, et al. On the origin of the stability of graphene oxide membranes in water. Nat Chem. 2015;7:166–170.
  • Xi Y, Hu J, Liu Z, et al. Graphene oxide membranes with strong stability in aqueous solutions and controllable lamellar spacing. Acs Appl Mater Inter. 2016;8:15557–15566.
  • Hung W, Tsou C, De Guzman M, et al. Cross-linking with diamine monomers to prepare composite graphene oxide-framework membranes with varying D-spacing. Chem Mater. 2014;26:2983–2990.
  • Nan Q, Li P, Cao B. Fabrication of positively charged nanofiltration membrane via the layer-by-layer assembly of graphene oxide and polyethylenimine for desalination. Appl Surf Sci. 2016;387:521–528.
  • Xia S, Ni M, Zhu T, et al. Ultrathin graphene oxide nanosheet membranes with various d-spacing assembled using the pressure-assisted filtration method for removing natural organic matter. Desalination. 2015;371:78–87.
  • Zhang Y, Zhang S, Chung T. Nanometric graphene oxide framework membranes with enhanced heavy metal removal via nanofiltration. Environ Sci Technol. 2015;49:10235–10242.
  • Zhang Y, Chen S, An J, et al. Construction of an antibacterial membrane based on dopamine and polyethylenimine cross-linked graphene oxide. Acs Biomater Sci Eng. 2019;5:2732–2739.
  • Zhang P, Gong J, Zeng G, et al. Cross-linking to prepare composite graphene oxide-framework membranes with high-flux for dyes and heavy metal ions removal. Chem Eng J. 2017;322:657–666.
  • Wang Z, Wei R, Liu X. Preparation and dielectric properties of copper phthalocyanine/graphene oxide nanohybrids via in situ polymerization. J Mater Sci. 2016;51:4682–4690.
  • Li H, Tian Y, Zhao X, et al. Competition of co-existing cations to eliminate negative effect of Na+ on graphene oxide membrane structure and stabilize the separation performance. Sep Purif Technol. 2021;258:118020.
  • Liu T, Yang B, Graham N, et al. Trivalent metal cation cross-linked graphene oxide membranes for NOM removal in water treatment. J Membrane Sci. 2017;542:31–40.
  • Lim M, Choi Y, Kim J, et al. Cross-linked graphene oxide membrane having high ion selectivity and antibacterial activity prepared using tannic acid-functionalized graphene oxide and polyethyleneimine. J Membrane Sci. 2017;521:1–9.
  • Zhang Y, Feng Y, Xiang Q, et al. A high-flux and anti-interference dual-functional membrane for effective removal of Pb(II) from natural water. J Hazard Mater. 2020;384:121492.
  • Yang M, Zhao C, Zhang S, et al. Preparation of graphene oxide modified poly(m-phenylene isophthalamide) nanofiltration membrane with improved water flux and antifouling property. Appl Surf Sci. 2017;394:149–159.
  • Qi H, Zhao X, Li H, et al. Impact of monovalent cations on the separation performance of graphene oxide membrane for different organic matters. Water Sci Technol. 2020;82:1560–1569.
  • Zhang Y, Zhang S, Gao J, et al. Layer-by-layer construction of graphene oxide (GO) framework composite membranes for highly efficient heavy metal removal. J Membrane Sci. 2016;515:230–237.
  • Meng N, Zhao W, Shamsaei E, et al. A low-pressure GO nanofiltration membrane crosslinked via ethylenediamine. J Membrane Sci. 2018;548:363–371.
  • Li J, Li L, Zhang B, et al. Synthesis of few-layer reduced graphene oxide for lithium-ion battery electrode materials. Ind Eng Chem Res. 2014;53:13348–13355.
  • Wei N, Peng X, Xu Z. Understanding water permeation in graphene oxide membranes. Acs Appl Mater Inter. 2014;6:5877–5883.
  • Shih C, Lin S, Sharma R, et al. Understanding the pH-dependent behavior of graphene oxide aqueous solutions: a comparative experimental and molecular dynamics simulation study. Langmuir. 2012;28:235–241.
  • Dimiev A, Kosynkin DV, Alemany LB, et al. Pristine graphite oxide. J Am Chem Soc. 2012;134:2815–2822.
  • Yang H, Liao K, Huang H, et al. Mussel-inspired modification of a polymer membrane for ultra-high water permeability and oil-in-water emulsion separation. J Mater Chem A. 2014;2:10225–10230.
  • Lv Y, Du Y, Qiu W, et al. Nanocomposite membranes via the codeposition of polydopamine/polyethylenimine with silica nanoparticles for enhanced mechanical strength and high water permeability. Acs Appl Mater Inter. 2017;9:2966–2972.
  • Nightingale ER. Phenomenological theory of ion solvation. effective radii of hydrated ions. J Phys Chem. 1959;63:1381–1387.
  • Zhu W, Sun S, Gao J, et al. Dual-layer polybenzimidazole/polyethersulfone (PBI/PES) nanofiltration (NF) hollow fiber membranes for heavy metals removal from wastewater. J Membrane Sci. 2014;456:117–127.
  • Al-Rashdi BAM, Johnson DJ, Hilal N. Removal of heavy metal ions by nanofiltration. Desalination. 2013;315:2–17.
  • Wang L, Wang N, Li J, et al. Layer-by-layer self-assembly of polycation/GO nanofiltration membrane with enhanced stability and fouling resistance. Sep Purif Technol. 2016;160:123–131.
  • Wang N, Ji S, Zhang G, et al. Self-assembly of graphene oxide and polyelectrolyte complex nanohybrid membranes for nanofiltration and pervaporation. Chem Eng J. 2012;213:318–329.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.