Green reduction of graphene oxide by polydopamine to a construct flexible film: superior flame retardancy and high thermal conductivity

被引:137
作者
Luo, Fubin [1 ,2 ]
Wu, Kun [1 ]
Shi, Jun [1 ,2 ]
Du, Xiangxiang [1 ,2 ]
Li, Xiaoya [1 ,2 ,3 ]
Yang, Liu [1 ,2 ,3 ]
Lu, Mangeng [1 ]
机构
[1] Chinese Acad Sci, Guangzhou Inst Chem, Key Lab Cellulose & Lignocellulos Chem, Guangzhou 510650, Guangdong, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100039, Peoples R China
[3] Guangdong Prov Engn & Technol Res Ctr Touch Signi, Guangzhou 510650, Guangdong, Peoples R China
关键词
FUNCTIONALIZED GRAPHENE; DIELECTRIC-PROPERTIES; GRAPHITE OXIDE; COMPOSITES; CARBON; LAYER; NANOPARTICLES; ADSORPTION; NANOSHEETS; ADSORBENT;
D O I
10.1039/c7ta04740a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Inspired by mussels, dopamine (DOPA) was used as a green reducing agent for graphene oxide (GO) to prepare a superior flame retardant and high thermal conductive flexible film. The self-polymerization of dopamine occurred on the surface of GO nanosheets, accompanied by the reduction of GO. As the solvent was gradually removed, the reduced graphene sheets covered by polydopamine formed a layer-by-layer stacked film, where polydopamine acted as a linkage filled in the interlayer space. Herein, the experimental results indicated that the tensile strength of the constructed graphene/polydopamine composites film (GPF) was as high as 25 MPa. The in-plane thermal conductivity of this prepared film was 13.42 W m(-1) K-1, whereas that in the cross-plane direction was 0.69 W m(-1) K-1. The high anisotropy of the thermal conductivity was verified to be due to the high alignment of reduced graphene. Fire experiments showed that the GPF could effectively prevent flame spreading and propagation without ignition, and the heat release rate (HRR) curve showed that the GPF had no heat release below 500 degrees C. The peak HRR is only 40 W g(-1) at 528 degrees C, whereas that of GO is 360 W g(-1) at 165 degrees C. This phenomenon demonstrates that the GPF has excellent flame retardancy.
引用
收藏
页码:18542 / 18550
页数:9
相关论文
共 57 条
[1]   Superior thermal conductivity of single-layer graphene [J].
Balandin, Alexander A. ;
Ghosh, Suchismita ;
Bao, Wenzhong ;
Calizo, Irene ;
Teweldebrhan, Desalegne ;
Miao, Feng ;
Lau, Chun Ning .
NANO LETTERS, 2008, 8 (03) :902-907
[2]   Self-Assembled Free-Standing Graphite Oxide Membrane [J].
Chen, Chengmeng ;
Yang, Quan-Hong ;
Yang, Yonggang ;
Lv, Wei ;
Wen, Yuefang ;
Hou, Peng-Xiang ;
Wang, Maozhang ;
Cheng, Hui-Ming .
ADVANCED MATERIALS, 2009, 21 (29) :3007-3011
[3]   Bioinspired Catecholic Flame Retardant Nanocoating for Flexible Polyurethane Foams [J].
Cho, Joon Hee ;
Vasagar, Vivek ;
Shanmuganathan, Kadhiravan ;
Jones, Amanda R. ;
Nazarenko, Sergei ;
Ellison, Christopher J. .
CHEMISTRY OF MATERIALS, 2015, 27 (19) :6784-6790
[4]   Graphene oxide reduction by standard industrial reducing agent: thiourea dioxide [J].
Chua, Chun Kiang ;
Ambrosi, Adriano ;
Pumera, Martin .
JOURNAL OF MATERIALS CHEMISTRY, 2012, 22 (22) :11054-11061
[5]   Recent Advances in Nanoscale Bioinspired Materials [J].
Demirel, Melik C. ;
Cetinkaya, Murat ;
Pena-Francesch, Abdon ;
Jung, Huihun .
MACROMOLECULAR BIOSCIENCE, 2015, 15 (03) :300-311
[6]   Enhanced thermal conductive property of polyamide composites by low mass fraction of covalently grafted graphene nanoribbons [J].
Ding, Peng ;
Zhuang, Nan ;
Cui, Xieliang ;
Shi, Liyi ;
Song, Na ;
Tang, Shengfu .
JOURNAL OF MATERIALS CHEMISTRY C, 2015, 3 (42) :10990-10997
[7]   Anisotropic thermal conductive properties of hot-pressed polystyrene/graphene composites in the through-plane and in-plane directions [J].
Ding, Peng ;
Zhang, Jin ;
Song, Na ;
Tang, Shengfu ;
Liu, Yimin ;
Shi, Liyi .
COMPOSITES SCIENCE AND TECHNOLOGY, 2015, 109 :25-31
[8]   Elucidating the Structure of Poly(dopamine) [J].
Dreyer, Daniel R. ;
Miller, Daniel J. ;
Freeman, Benny D. ;
Paul, Donald R. ;
Bielawski, Christopher W. .
LANGMUIR, 2012, 28 (15) :6428-6435
[9]   Thermal Conductivity of Graphene in Corbino Membrane Geometry [J].
Faugeras, Clement ;
Faugeras, Blaise ;
Orlita, Milan ;
Potemski, M. ;
Nair, Rahul R. ;
Geim, A. K. .
ACS NANO, 2010, 4 (04) :1889-1892
[10]   Raman spectroscopy of graphene and graphite: Disorder, electron-phonon coupling, doping and nonadiabatic effects [J].
Ferrari, Andrea C. .
SOLID STATE COMMUNICATIONS, 2007, 143 (1-2) :47-57