石墨烯三维宏观体的构筑及石墨烯基复合材料对水体中常见污染物的去除研究进展

钱春园, 张婷*, 董玲玉

化工新型材料 ›› 2019, Vol. 47 ›› Issue (10) : 51 -55.

PDF (1141KB)
化工新型材料 ›› 2019, Vol. 47 ›› Issue (10) : 51-55.
综述与专论

石墨烯三维宏观体的构筑及石墨烯基复合材料对水体中常见污染物的去除研究进展

    钱春园, 张婷*, 董玲玉
作者信息 +

Study progress of construction of three-dimensional graphene and its composite for main pollutants removal

  • Qian Chunyuan, Zhang Ting, Dong Lingyu
Author information +
文章历史 +
PDF (1167K)

摘要

系统总结了石墨烯基三维宏观体材料的几种构筑方法,综述了石墨烯基复合材料在染料、重金属离子、油类和有机溶剂等水体常见污染物中的研究进展。石墨烯基复合材料的稳定性能、高效、再生、成本及其在水处理领域的实际应用仍然是今后研究的重点。

Abstract

Several methods for the construction of graphene-based three-dimensional macroscopic materials were systematically summarized,and reviewed the research progress of graphene-based composite materials in common pollutants such as dyes,heavy metal ions,oils,and organic solvents.The stability,efficiency,regeneration,and low cost of graphene-based composites and their practical application in water treatment were still the focus of future research.

关键词

石墨烯 / 三维宏观体 / 常见污染物 / 研究进展

Key words

graphene / three-dimensional graphene / common pollutant / research progress

引用本文

引用格式 ▾
石墨烯三维宏观体的构筑及石墨烯基复合材料对水体中常见污染物的去除研究进展[J]. 化工新型材料, 2019, 47(10): 51-55 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Guo S,Dong S.Graphene nanosheet:synthesis,molecular engineering,thin film,hybrids,and energy and analytical applications[J].Chemical Society Reviews,2011,40(5):2644-2672.
[2] Zhu Y,Murali S,Cai W,et al.Graphene-based materials:graphene and graphene oxide:synthesis,properties,and applications[J].Advanced Materials,2010,22(35):3906-3924.
[3] Zhu Y,Murali S,Stoller M D,et al.Carbon-based supercapacitors produced by activation of graphene[J].Science,2011,332(6037):1537.
[4] Kim K S,Zhao Y,Jang H,et al.Large-scale pattern growth of graphene films for stretchable transparent electrodes[J].Nature,2009,457(7230):706.
[5] Han T H,Lee Y,Choi M R,et al.Extremely efficient flexible organic light-emitting diodes with modified graphene anode[J].Nature Photonics,2012,6(2):105-110.
[6] Miao X,Tongay S,Pettterson M K,et al.High efficiency graphene solar cell by chemical doping[J].Nano Letters,2012,12(6):2745.
[7] Yang X,Cheng C,Wang Y,et al.Liquid-mediated dense integration of graphene materials for compact capacitive energy storage[J].Science,2013,341(6145):534-537.
[8] Ansari S,Giannelis E P.Functionalized graphene sheet-poly(vinylidene fluoride) conductive nanocomposites[J].Journal of Polymer Science Part B Polymer Physics,2010,47(9):888-897.
[9] Yang K,Feng L,Shi X,et al.Nano-graphene in biomedicine:theranostic applications[J].Chemical Society Reviews,2013,42(2):530-547.
[10] Cong H P,Ren X C,Wang P,et al.Macroscopic multifunctional graphene-based hydrogels and aerogels by a metal ion induced self-assembly process[J].Acs Nano,2012,6(3):2693-2703.
[11] Sha J,Zhao N,Liu E,et al.In situ synthesis of ultrathin 2-D TiO2 with high energy facets on graphene oxide for enhancing photocatalytic activity[J].Carbon,2014,68(3):352-359.
[12] Xiang Q,Yu J,Jaroniec M.Graphene-based semiconductor photocatalysts[J].Chemical Society Reviews,2012,41(2):782-796.
[13] Williams G,Seger B,Kamat P V.TiO2-graphene nanocomposites.UV-assisted photocatalytic reduction of graphene oxide[J].Acs Nano,2008,2(7):1487.
[14] Tang Z,Shen S,Zhuang J,et al.Noble-metal-promoted three-dimensional macroassembly of single-layered graphene oxide[J].Angewandte Chemie,2010,122(27):4707-4711.
[15] 沈意.石墨烯基三维宏观体的构筑及其对水中典型污染物的去除作用机理及影响因素[D].杭州:浙江大学,2017.
[16] Chen Z,Ren W,Gao L,et al.Three-dimensional flexible and conductive interconnected graphene networks grown by chemical vapour deposition[J].Nature Materials,2011,10(6):424.
[17] Wilson P,Mbah G,Smith T,et al.Three-dimensional periodic graphene nanostructures[J].Journal of Materials Chemistry C,2014,2(10):1879-1886.
[18] Yao L,Zhang L,Wang R,et al.A new integrated approach for dye removal from wastewater by polyoxometalates functionalized membranes[J].Journal of Hazardous Materials,2016,301:462-470.
[19] Sha J,Li Y,Villegas S R,et al.Three-dimensional printed graphene foams[J].Acs Nano,2017,11(7):6860.
[20] Zhang Q,Zhang F,Xu X,et al.Three-dimensional printing hollow polymer template-mediated graphene lattices with tailorable architectures and multifunctional properties[J].Acs Nano,2018,12(2):1096-1106.
[21] Chen C,Yang Q H,Yang Y,et al.Erratum:self-assembled free-standing graphite oxide membrane[J].Advanced Materials,2009,21(35):DOI:10.1002/adma.200803726.
[22] Hu Y H,Wang H,Hu B.Thinnest two-dimensional nanomaterial-graphene for solar energy[J].Chemsuschem,2010,3(7):782-796.
[23] Shen J,Hu Y,Li C,et al.Layer-by-layer self-assembly of graphene nanoplatelets[J].Langmuir the Acs Journal of Surfaces & Colloids,2009,25(11):6122-6128.
[24] Li X,Zhang G,Bai X,et al.Highly conducting graphene sheets and Langmuir-Blodgett films[J].Nature Nanotechnology,2008,3(9):538-542.
[25] Ghorbani M,Abdizadeh H,Golobostanfard M R.Reduction of graphene oxide via modified hydrothermal method[J].Procedia Materials Science,2015,11:326-330.
[26] Bouguettoucha A,Atout H,Álvarez M G,et al.Enhanced photocatalytic degradation of methylene blue:preparation of TiO2/reduced graphene oxide nanocomposites by direct sol-gel and hydrothermal methods[J].Geochemistry International,2017,50(11):952-957.
[27] Xu Y,Sheng K,Li C,et al.Self-assembled graphene hydrogel via a one-step hydrothermal process[J].Acs Nano,2010,4(7):4324-4330.
[28] Yu B,Xu J,Liu J H,et al.Adsorption behavior of copper ions on graphene oxide-chitosan aerogel[J].Journal of Environmental Chemical Engineering,2013,1(4):1044-1050.
[29] Mahmoodi N M.Synthesis of magnetic carbon nanotube and photocatalytic dye degradation ability[J].Environmental Monitoring & Assessment,2014,186(9):5595-5604.
[30] Konicki W,Aleksandrzak M,Mijowska E.Equilibrium,kinetic and thermodynamic studies on adsorption of cationic dyes from aqueous solutions using graphene oxide[J].Chemical Engineering Research & Design,2017,123,DOI:10.1016/j.jcis.2017.02.031.
[31] Chang B Y S,Mehmood M S,Pandikumar A,et al.Hydrothermally prepared graphene-titania nanocomposite for the solar photocatalytic degradation of methylene blue[J].Desalination & Water Treatment,2016,57(1):238-245.
[32] Tiwari J N,Mahesh K,Le N H,et al.Reduced graphene oxide-based hydrogels for the efficient capture of dye pollutants from aqueous solutions[J].Carbon,2013,56(5):173-182.
[33] Sun H,Cao L,Lu L.Magnetite/reduced graphene oxide nanocomposites:one step solvothermal synthesis and use as a novel platform for removal of dye pollutants[J].Nano Research,2011,4(6):550-562.
[34] Xu J,Xu D,Zhu B,et al.Adsorptive removal of an anionic dye congo red by flower-like hierarchical magnesium oxide (MgO)-graphene oxide composite microspheres[J].Applied Surface Science,2018,435:1136-1142.
[35] Hou X X,Deng Q F,Ren T Z,et al.Adsorption of Cu2+ and methyl orange from aqueous solutions by activated carbons of corncob-derived char wastes[J].Environmental Science & Pollution Research,2013,20(12):8521-8534.
[36] Wu Y,Luo H,Wang H,et al.Adsorption of hexavalent chromium from aqueous solutions by graphene modified with cetyltrimethylammonium bromide[J].J Colloid Interface Sci,2013,394(1):183-191.
[37] 刘伟,杨琦,李博,等.磁性石墨烯吸附水中Cr﹙Ⅵ﹚研究[J].环境科学,2015,36(2):537-544.
[38] Hu X J,Liu Y G,Wang H,et al.Removal of Cu(Ⅱ) ions from aqueous solution using sulfonated magnetic graphene oxide composite[J].Separation & Purification Technology,2013,108(16):189-195.
[39] Liu M,Chen C,Hu J,et al.Synthesis of magnetite/graphene oxide composite and application for cobalt(Ⅱ) removal[J].Journal of Physical Chemistry C,2011,115(51):25234-25240.
[40] Hong J Y,Sohn E H,Park S,et al.Highly-efficient and recyclable oil absorbing performance of functionalized graphene aerogel[J].Chemical Engineering Journal,2015,269:229-235.
[41] Ren H,Shi X,Zhu J,et al.Facile synthesis of N-doped graphene aerogel and its application for organic solvent adsorption[J].Journal of Materials Science,2016,51(13):6419-6427.

基金资助

国家自然基金(51302123)

AI Summary AI Mindmap
PDF (1141KB)

1215

访问

0

被引

导航
相关文章

AI思维导图

/