Graphene oxide and its reduction: modeling and experimental progress

被引:426
作者
Mao, Shun [1 ]
Pu, Haihui [1 ]
Chen, Junhong [1 ]
机构
[1] Univ Wisconsin, Dept Mech Engn, Milwaukee, WI 53211 USA
基金
美国国家科学基金会;
关键词
CHEMICALLY CONVERTED GRAPHENE; AB STACKING ORDER; SOLID-STATE NMR; GRAPHITE OXIDE; FUNCTIONALIZED GRAPHENE; THERMAL REDUCTION; MONTE-CARLO; STRUCTURAL-PROPERTIES; EPITAXIAL GRAPHENE; RAMAN-SPECTROSCOPY;
D O I
10.1039/c2ra00663d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene oxide (GO) has attracted intense interest for its use as a precursor material for the mass production of graphene-based materials, which hold great potential in various applications. Insights into the structure of GO and reduced GO (RGO) are of significant interest, as their properties are dependent on the type and distribution of functional groups, defects, and holes from missing carbons in the GO carbon lattice. Modeling the structural motifs of GO can predict the structural evolution in its reduction and presents promising directions to tailor the properties of RGO. Two general reduction approaches, chemical and thermal, are proposed to achieve highly reduced GO materials. This review introduces typical chemical oxidation methods to produce GO from pure graphite, then summarizes the modeling progress on the GO structure and its oxidation and reduction dynamics, and lastly, presents the recent progress of RGO preparation through chemical and thermal reduction approaches. By summarizing recent studies on GO structural modeling and its reduction, this review leads to a deeper understanding of GO morphology and reduction path, and suggests future directions for the scalable production of graphene-based materials through atomic engineering.
引用
收藏
页码:2643 / 2662
页数:20
相关论文
共 209 条
[1]   Interaction of Water Molecules with Graphene: A Density Functional Theory and Molecular Dynamics Study [J].
Abe, Shigeaki ;
Nagoya, Yoshinori ;
Watari, Fumio ;
Tachikawa, Hiroto .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2010, 49 (01)
[2]  
Acik M, 2010, NAT MATER, V9, P840, DOI [10.1038/NMAT2858, 10.1038/nmat2858]
[3]   The Role of Intercalated Water in Multilayered Graphene Oxide [J].
Acik, Muge ;
Mattevi, Cecilia ;
Gong, Cheng ;
Lee, Geunsik ;
Cho, Kyeongjae ;
Chhowalla, Manish ;
Chabal, Yves J. .
ACS NANO, 2010, 4 (10) :5861-5868
[4]   Photodegradation of Graphene Oxide Sheets by TiO2 Nanoparticles after a Photocatalytic Reduction [J].
Akhavan, O. ;
Abdolahad, M. ;
Esfandiar, A. ;
Mohatashamifar, M. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2010, 114 (30) :12955-12959
[5]   Honeycomb Carbon: A Review of Graphene [J].
Allen, Matthew J. ;
Tung, Vincent C. ;
Kaner, Richard B. .
CHEMICAL REVIEWS, 2010, 110 (01) :132-145
[6]   Al doped graphene: A promising material for hydrogen storage at room temperature [J].
Ao, Z. M. ;
Jiang, Q. ;
Zhang, R. Q. ;
Tan, T. T. ;
Li, S. .
JOURNAL OF APPLIED PHYSICS, 2009, 105 (07)
[7]   High-capacity hydrogen storage by metallized graphene [J].
Ataca, C. ;
Akturk, E. ;
Ciraci, S. ;
Ustunel, H. .
APPLIED PHYSICS LETTERS, 2008, 93 (04)
[8]   Gasification behavior of catalytic filamentous carbon [J].
Avdeeva, LB ;
Reshetenko, TV ;
Fenelonov, VB ;
Chuvilin, AL ;
Ismagilov, ZR .
CARBON, 2004, 42 (12-13) :2501-2507
[9]  
Bagri A, 2010, NAT CHEM, V2, P581, DOI [10.1038/nchem.686, 10.1038/NCHEM.686]
[10]   Reduction of graphene oxide by electron beam generated plasmas produced in methane/argon mixtures [J].
Baraket, M. ;
Walton, S. G. ;
Wei, Z. ;
Lock, E. H. ;
Robinson, J. T. ;
Sheehan, P. .
CARBON, 2010, 48 (12) :3382-3390