Scalable Production of Edge-Functionalized Graphene Nanoplatelets via Mechanochemical Ball-Milling

被引:150
作者
Jeon, In-Yup [1 ]
Bae, Seo-Yoon [1 ]
Seo, Jeong-Min [1 ]
Baek, Jong-Beom [1 ]
机构
[1] Ulsan Natl Inst Sci & Technol, Sch Energy & Chem Engn, Ctr Dimens Controllable Organ Frameworks, Ulsan 689798, South Korea
基金
新加坡国家研究基金会;
关键词
METAL-FREE ELECTROCATALYSTS; SENSITIZED SOLAR-CELLS; OXYGEN REDUCTION REACTION; CARBON NANOTUBES; EFFICIENT ELECTROCATALYSTS; ION BATTERIES; FREE CATHODES; OXIDE; PERFORMANCE; ELECTRODES;
D O I
10.1002/adfm.201502214
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Although there are a variety of methods for producing graphene, commercialization remains challenging because each method has its own pros and cons. For the wide use of graphene as a next generation material in diverse applications, the process by which graphene is manufactured must be robust enough to overcome barriers to commercialization, as has been experienced in commercializing carbon nanotube products. Here, a recent discovery of a new manufacturing process for efficient delamination of graphite into graphene nanoplatelets (GnPs) via mechanochemical ball-milling is summarized. In this process, transferring sufficient kinetic energy to graphitic frameworks will crack graphitic C-C bonds, generate active carbon species (mostly carbon free radicals), introduce edge-functional groups, and delaminate graphitic layers into edge-functionalized GnPs (EFGnPs). While this process is a method for mass production, it does not involve hazardous chemicals (e.g., corrosive acids and toxic reducing agents) such as those used for producing graphene oxide (GO) and reduced graphene oxide (rGO). Owing to its edge-selective functionalization, the EFGnPs have minimal basal area defects with selectivity of a variety of edge groups by forming edge C-X bonds (X = nonmetals or metalloids) that are tunable.
引用
收藏
页码:6961 / 6975
页数:15
相关论文
共 70 条
[11]   The chemistry of graphene oxide [J].
Dreyer, Daniel R. ;
Park, Sungjin ;
Bielawski, Christopher W. ;
Ruoff, Rodney S. .
CHEMICAL SOCIETY REVIEWS, 2010, 39 (01) :228-240
[12]   Electrical Energy Storage for the Grid: A Battery of Choices [J].
Dunn, Bruce ;
Kamath, Haresh ;
Tarascon, Jean-Marie .
SCIENCE, 2011, 334 (6058) :928-935
[13]  
Everett D.H., 1988, BASIC PRINCIPLES COL, P76
[14]   The rise of graphene [J].
Geim, A. K. ;
Novoselov, K. S. .
NATURE MATERIALS, 2007, 6 (03) :183-191
[15]   Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction [J].
Gong, Kuanping ;
Du, Feng ;
Xia, Zhenhai ;
Durstock, Michael ;
Dai, Liming .
SCIENCE, 2009, 323 (5915) :760-764
[16]   Photoelectrochemical cells [J].
Grätzel, M .
NATURE, 2001, 414 (6861) :338-344
[17]   Graphene oxide nanosheets/multi-walled carbon nanotubes hybrid as an excellent electrocatalytic material towards VO2+/VO2+ redox couples for vanadium redox flow batteries [J].
Han, Pengxian ;
Yue, Yanhua ;
Liu, Zhihong ;
Xu, Wei ;
Zhang, Lixue ;
Xu, Hongxia ;
Dong, Shanmu ;
Cui, Guanglei .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (11) :4710-4717
[18]   The effects of carboxylic acids on the aqueous dispersion and electrophoretic deposition of ZrO2 [J].
Hanaor, Dorian ;
Michelazzi, Marco ;
Leonelli, Cristina ;
Sorrell, Charles C. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2012, 32 (01) :235-244
[19]   Facile, scalable synthesis of edge-halogenated graphene nanoplatelets as efficient metal-free eletrocatalysts for oxygen reduction reaction [J].
Jeon, In-Yup ;
Choi, Hyun-Jung ;
Choi, Min ;
Seo, Jeong-Min ;
Jung, Sun-Min ;
Kim, Min-Jung ;
Zhang, Sheng ;
Zhang, Lipeng ;
Xia, Zhenhai ;
Dai, Liming ;
Park, Noejung ;
Baek, Jong-Beom .
SCIENTIFIC REPORTS, 2013, 3
[20]   High-performance dye-sensitized solar cells using edge-halogenated graphene nanoplatelets as counter electrodes [J].
Jeon, In-Yup ;
Kim, Hong Mo ;
Choi, In Taek ;
Lim, Kimin ;
Ko, Jaejung ;
Kim, Jae Cheon ;
Choi, Hyun-Jung ;
Ju, Myung Jong ;
Lee, Jae-Joon ;
Kim, Hwan Kyu ;
Baek, Jong-Beom .
NANO ENERGY, 2015, 13 :336-345