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Optimization and evaluation of reduced graphene oxide hydrogel composite as a demulsifier for heavy crude oil-in-water emulsion 被引量:1

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摘要 The rising production of produced water from oilfields had been proven to bring detrimental environmental effects.In this study,an efficient,recyclable,and environmental-friendly reduced graphene oxide immobilizedκ-Carrageenan hydrogel composite(κCaGO)was fabricated as an alternative sorbent for crude oil-in-water demulsification.Polyethyleneimine(PEI)was employed to form a stable hydrogel composite.The conditions for the immobilization of graphene oxide(GO)on PEI-modifiedκ-Carrageenan(κC)beads were optimized appropriately.An immobilization yield of 77%was attained at 2%PEI,2 h immobilization activation time,and pH 6.5.Moreover,the synthesizedκCaGO is capable of demulsification with an average demulsification efficiency of 70%.It was found that the demulsification efficiency increases with salinity andκCaGO dosage,and it deteriorates under alkaline condition.These phenomena can be attributed to the interfacial interactions betweenκCaGO and the emulsion.Furthermore,theκCaGO can be recycled to use for up to six cycles without significant leaching and degradation.As such,the synthesizedκCaGO could be further developed as a potential sorbent substitute for the separation of crude oil from produced water.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2021年第5期297-305,共9页 中国化学工程学报(英文版)
基金 The authors would like to acknowledge for the financial supports given by Fundamental Research Grant Scheme (FRGS/1/2019/TK02/CURTIN/03/2) from Ministry of Higher Education (MOHE),Malaysia.
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  • 1Xingyilong Zhang,Houfang Lu,Kejing Wu,Yingying Liu,Changjun Liu,Yingming Zhu,Bin Liang.Hydrolysis of mechanically pre-treated cellulose catalyzed by solid acid SO4^2--TiO2 in water–ethanol solvent[J].Chinese Journal of Chemical Engineering,2020,28(1):136-142. 被引量:6
  • 2傅玲,刘洪波,邹艳红,李波.Hummers法制备氧化石墨时影响氧化程度的工艺因素研究[J].炭素,2005(4):10-14. 被引量:111
  • 3Loh K P, Bao Q L, Ang P K, et al. The chemistry of graphene [J]. J Mater Chem, 2010, 20: 2277-2289.
  • 4Dreyer D R, Park S, Bielawski C W, et al. The chemistry of graphene oxide [J]. Chem Soc Rev, 2010, 39: 228-240.
  • 5Sarkar S, Bekyarova E, Haddon R C. Chemistry at the dirac point: diels-alder reactivity of graphene accounts [J].Chem Res, 2012, 45(4): 673-682.
  • 6Luo B, Liu S M, Zhi L J. Chemical approaches toward gra- phene-based nanomaterials and their applications in energy-relat- ed areas[J]. Small, 2012, 8(5) : 630-646.
  • 7Nardecchia S, Carriazo D, Ferrer M L, et al. Three dimensional macroporous architectures and aerogels built of carbon nanotubes and/or graphene: synthesis and applications E J ]. Chem Soc Rev, 2013, 42: 794-830.
  • 8Xu Y X, Sheng K X, Li C, et al. Self-assembled graphene hy- drogel via a one-step hydrothermal process [ J ]. ACS Nano, 2010, 4(7) : 4324-4330.
  • 9Chen C M, Yang Q H, Yang Y G, et al. Self-assembled free- standing graphite oxide membrane [ J ]. Adv Mater, 2009, 21 (29) : 3007-30011.
  • 10Lv W, Tan Y, Ni W, et al. One-pot self-assembly of three-di- mensional graphene macroassemblies with porous core and lay- ered shell [J]. J Mater Cbem, 2011, 21: 12352-12357.

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