Preparation and Application of 3D Graphene-based Composites:a Review

被引:0
作者
Wang K. [1 ]
Dong K. [1 ]
Wang H. [1 ]
Wang W. [1 ]
Li N. [1 ]
Xu Z. [1 ]
Lu H. [1 ]
Kuang L. [1 ]
机构
[1] College of Textiles, Tianjin Polytechnic University, Tianjin
来源
Cailiao Daobao/Materials Review | 2017年 / 31卷 / 09期
关键词
3D assembly; Composites; Graphene;
D O I
10.11896/j.issn.1005-023X.2017.017.007
中图分类号
学科分类号
摘要
3D graphene materials not only inherits perfect carbon crystal structure of 2D graphene sheet, but also shows unique structural characteristics, including ultra-low density, high porosity, large specific surface area, and so forth. 3D graphene has become a new star in functional materials field in recent years because of its excellent performance involving electrical, thermal, and adsorption properties. At present, the studies of 3D graphene-based polymer composites or 3D graphene/inorganic nano compo-sites have made a substantial progress. Researchers have realized 3D well-aligned and controlled assembly between graphene and functional component via abundant physical and chemical route. With the unique structure and excellent performance, 3D graphene-based composites show great potential in energy storage, environmental protection, sensor, etc. This article reviews recent progress in preparation and application of 3D graphene-based composites, involving the 3D graphene/polymer composites system and the 3D graphene/inorganic nano composites system. 3D assembly methods of the two systems are summarized, and the structural features of the composites are analyzed. The application progress of 3D graphene-based composites is briefly introduced. Finally, the development prospect of 3D structure design and diverse applications in the future are also proposed. Key words © 2017, Materials Review Magazine. All right reserved.
引用
收藏
页码:41 / 52
页数:11
相关论文
共 97 条
[1]  
Meyer J.C., Geim A.K., Katsnelson M.I., Et al., The structure of suspended graphene sheets, Nature, 446, 7131, (2007)
[2]  
Fasolino A., Los J.H., Katsnelson M.I., Intrinsic ripples in graphene, Nat Mater, 6, 11, (2007)
[3]  
Reina A., Jia X.T., Ho J., Et al., Large area, few-layer graphene films on arbitrary substrates by chemical vapor deposition, Nano Lett, 9, 1, (2009)
[4]  
Lee C., Wei X.D., Kysar J.W., Et al., Measurement of the elastic properties and intrinsic strength of monolayer graphene, Science, 321, 5887, (2008)
[5]  
Balandin A.A., Ghosh S., Bao W.Z., Et al., Superior thermal conductivity of single-layer graphene, Nano Lett, 8, 3, (2008)
[6]  
Xu Y.X., Sheng K.X., Li C., Et al., Self-assembled graphene hydrogel via a one-step hydrothermal process, ACS Nano, 4, 7, (2010)
[7]  
Chen Z.P., Ren W.C., Gao L.B., Et al., Three-dimensional flexible and conductive interconnected graphene networks grown by chemical vapour deposition, Nat Mater, 10, 6, (2011)
[8]  
Shi J.L., Wang H.F., Zhu X.L., Et al., The nanostructure preservation of 3D porous graphene: New insights into the graphitization and surface chemistry of non-stacked double-layer templated graphene after high-temperature treatment, Carbon, 103, (2016)
[9]  
Li Y.R., Chen J., Huang L., Et al., Highly compressible macroporous graphene monoliths via an improved hydrothermal process, Adv Mater, 26, 28, (2014)
[10]  
Niu Z.Q., Chen J., Hng H.H., Et al., A leavening strategy to prepare reduced graphene oxide foams, Adv Mater, 24, 30, (2012)