WENG W G, CHEN G H, WU D J. Crystallization kinetics and melting behaviors of nylon 6/foliated graphite nanocomposites[J].Polymer, 2003, 44(26):8119—8132.
[2]
CHEN G H, WENG W G, WU D J. Nonlinear conduction in the nylon6/foliated graphite nanocomposites above the percolation threshold[J].Journal of Polymer Science Part B:Polymer Physics, 2004, 42(1):155—167.
[3]
HERNANDEZ Y, NICOLOSI V, LOTYA M, et al. High-yield production of graphene by liquid-phase exfoliation of graphite[J].Nature Nanotechnology, 2008, 3(9):563—568.
[4]
COLEMAN J N. Liquid-phase exfoliation of nanotubes and graphene[J].Advanced Functional Materials, 2009, 19(23):3680—3695.
[5]
KHAN U, O'NEILL A, LOTYA M, et al. High-concentration solvent exfoliation of graphene[J].Small, 2010, 6(7):864—871.
[6]
颜肖慈, 罗明道.界面化学[M].北京:化学工业出版社, 2005.12—15.
[7]
LOTYA M, HERNANDEZ Y, KING P J, et al. Liquid phase production of graphene by exfoliation of graphite in surfactant/water solutions[J].Journal of the American Chemical Society, 2009, 131(10):3611—3620.
[8]
GUARDIA L, FERNANDEZ-MERINO M J, PAREDES J I, et al. High-throughput production of pristine graphene in an aqueous dispersion assisted by non-ionic surfactants[J].Carbon, 2011, 49(5):1653—1662.
[9]
STANKOVICH S, DIKIN D A, DOMMETT G H B, et al. Graphene-based composite materials[J].Nature, 2006, 442(7100):282—286.
[10]
ZHU Y W, MURALI S, CAI W W, et al. Graphene and graphene oxide: synthesis, properties, and applications[J].Advanced Materials, 2010, 22(35):3906—3924.
[11]
PARK S, RUOFF R S. Chemical methods for the production of graphenes[J].Nature Nanotechnology, 2009, 4(4):217—224.
[12]
吉莉, 张天友, 张东. 超声波频率和作用方式对剥离氧化石墨的影响[J].材料开发与应用, 2011, 26(1):42—44. JI Li, ZHANG Tian-you, ZHANG Dong. Influence of ultrasonic frequencies and modes on exfoliation of graphite oxide[J]. Development and Application of Materials, 2011, 26(1):42—44.
[13]
方景光. 粉磨工艺及设备[M].武汉: 武汉理工大学出版社, 2002.1—4.
[14]
ZHAO W F, FANG M, WU F R, et al. Preparation of graphene by exfoliation of graphite using wet ball milling[J].Journal of Materials Chemistry, 2010, 20(28):5817—5819.
[15]
WU H, ZHAO W F, HU H W, et al. One-step in situ ball milling synthesis of polymer-functionalized graphene nanocomposites[J].Journal of Materials Chemistry, 2011, 21(24):8626—8632.
[16]
WU H, ZHAO W F, CHEN G H. One-pot in situ ball milling preparation of polymer/graphene nanocomposites[J].Journal of Applied Polymer Science, 2012, 125(5):3899—3903.
[17]
FAN Y C, WANG L J, LI J L, et al. Preparation and electrical properties of graphene nanosheet/Al2O3 composites[J].Carbon, 2010, 48(6):1743—1749.
[18]
LEN V, QUINTANA M, HERRERO M A, et al. Few-layer graphenes from ball-milling of graphite with melamine[J].Chem Commun, 2011, 47(39):10936—10938.
[19]
JEON I Y, SHIN Y R, SOHN G J, et al. Edge-carboxylated graphene nanosheets via ball milling[J].PNAS, 2012, 109(15):5588—5593.
[20]
甘路平, 程起林, 顾达. 石墨超细片状磨碎的机理及方法[J].化工生产与技术, 1999, (22):28—30. GAN Lu-ping, CHENG Qi-lin, GU Da. Mechanism and method of grinding natural scale graphite into laminate ultrafine particles in water[J]. Chemical Production and Technology, 1999, (22):28—30.
[21]
KNIEKE C, BERGER A, VOIGT M, et al. Scalable production of graphene sheets by mechanical delamination[J].Carbon, 2010, 48(11):3196—3204.
[22]
江莞, 范宇驰, 刘霞, 等. 机械剥离法制备石墨烯及其在石墨烯/陶瓷复合材料制备中的应用[J].中国材料进展, 2011, 30(1):12—20. JIANG Wan, FAN Yu-chi, LIU Xia, et al. Preparation of graphene by mechanical exfoliation and its application in preparation of graphene/ceramic composites[J]. Materials China, 2011, 30(1):12—20.
[23]
ANTISARI M V, MONTONE A, JOVIC N, et al. Low energy pure shear milling: a method for the preparation of graphite nano-sheets[J].Scripta Materialia, 2006, 55(11):1047—1050.
[24]
CHEN J F, DUAN M, CHEN G H. Continuous mechanical exfoliation of graphene sheets via three-roll mill[J].Journal of Materials Chemistry, 2012, 22(37):19625—19628.
[25]
NOVOSELOV K S, GEIM A K, MOROZOV S V, et al. Electric field effect in atomically thin carbon films[J].Science, 2004, 306(5696):666—669.
[26]
NOVOSELOV K S, GEIM A K. The rise of graphene[J].Nature Materials, 2007, 6(3):183—191.
[27]
DU X, SKACHKO I, BARKER A, et al. Approaching ballistic transport in suspended graphene[J].Nature Nanotechnology, 2008, 3(8):491-495.
[28]
LEE C, WEI X, KYSAR J W, et al. Measurement of the elastic properties and intrinsic strength of monolayer graphene[J].Science, 2008, 321(5887):385-388.
[29]
BALANDIN A A, GHOSH S, BAO W Z, et al. Superior thermal conductivity of single-layer graphene[J]. Nano Letters, 2008, 8(3): 902-907.
[30]
STOLLER M D, PARK S, ZHU Y W, et al. Graphene-based ultracapacitors[J]. Nano Letters, 2008, 8(10):3498-3502.
[31]
ZHANG L L, ZHOU R, ZHAO X S. Graphene-based materials as supercapacitor electrodes[J]. Journal of Materials Chemistry, 2010, 20(29):5983-5992.
[32]
何铁石, 赵龙, 刘志成, 等. 石墨烯基超级电容器电极材料研究进展[J].电子元件与材料, 2011, 30(12):71-73. HE Tie-shi, ZHAO Long, LIU Zhi-cheng, et al. Research progress of graphene-based composites for supercapacitor electrodes[J]. Electronic Components and Materials, 2011, 30(12):71-73.
[33]
余泉茂, 王仁清. 石墨烯制备及其在超级电容器中的应用研究[J].材料导报, 2012, 26(8):7-13.YU Quan-mao, WANG Ren-qing. Research on preparation and application of graphene as electrode in supercapacitors[J]. Materials Review, 2012, 26(8):7-13.
[34]
傅强, 包信和. 石墨烯的化学研究进展[J].科学通报, 2009, 54(18):2657-2666. FU Qiang, BAO Xin-he. Progress in graphene chemistry[J]. Chinese Sci Bull, 2009, 54(18):2657-2666.
[35]
黄毅, 陈永胜. 石墨烯的功能化及其相关应用[J].中国科学, 2009, 39(9):887-896. HUANG Yi, CHEN Yong-sheng. Functionalization of graphene and their applications[J]. Sci China, 2009, 39(9):887-896.
[36]
陈国华.石墨烯材料科技与产业现状.北京:科学出版社, 2012.21-24.
[37]
NOVOSELOV K S, JIANG D, SCHEDIN F, et al. Two dimensional atomic crystals[J].PNAS, 2005, 102(30):10451—10453.
[38]
BOURLINOS A B, GOURNIS D, PETRIDIS D, et al. Graphite oxide: chemical reduction to graphite and surface modification with primary aliphatic amines and amino acids[J].Langmuir, 2003, 19(15):6050—6055.
[39]
STANKOVICH S, DIKIN D A, PINER R D, et al. Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide[J].Carbon, 2007, 45(7):1558—1565.
[40]
BERGER C, SONG Z M, LI X B, et al. Electron confinement and coherence in patterned epitaxial graphene[J].Science, 2006, 312(5777):1191—1196.
[41]
BERGER C, SONG Z M, LI T B, et al. Ultrathin epitaxial graphite: 2D electron gas properties and a route toward graphene-based nanoelectronics[J].Journal of Physical Chemistry B, 2004, 108(52):19912—19916.
[42]
OBRAZTSOV A N. Chemical vapour deposition: making graphene on a large scale[J].Nature Nanotechnology, 2009, 4(4):212—213.
[43]
LI X S, CAI W W, COLOMBO L, et al. Evolution of graphene growth on Ni and Cu by carbon iso-tope labeling[J].Nano Letters, 2009, 9(12):4268—4272.
[44]
SHU H B, CHEN X S, TAO X M, et al. Edge structural stability and kinetics of graphene chemical vapor deposition growth[J].ACS Nano, 2012, 6(4):3243—3250.
[45]
SUTTER P W, FLEGE J I, SUTTER E A. Epitaxial graphene on ruthenium[J].Nature Materials, 2008, 7(5):406—411.
[46]
PAN Y, ZHANG H G, SHI D X, et al. Highly ordered, millimeter scale, continuous, single-crystalline graphene monolayer formed on Ru(0001)[J].Advanced Materials, 2009, 21(27):2777—2780.
[47]
MEYER J C, GEIM A K, KATSNELSON M I, et al. On the roughness of single-and bi-layer graphene membranes[J].Solid State Commun, 2007, 143(1-2):101—109.
[48]
FASOLINO A, LOS J H, KATSNELSON M I. Intrinsic ripples in graphene[J].Nature Materials, 2007, 6(11):858—861.
[49]
唐多昌, 李晓红, 袁春华, 等. 石墨烯机械剥离法[J].西南科技大学学报, 2010, 25(3):16—18. TANG Duo-chang, LI Xiao-hong, YUAN Chun-hua, et al. Preliminary study of high quality graphene prepared by mechanical exfoliation[J]. Journal of Southwest University of Science and Technology, 2010, 25(3):16—18.
[50]
PANG S P, ENGLERT J M, TSAO H N, et al. Extrinsic corrugation-assisted mechanical exfoliation of monolayer graphene[J].Advanced Materials, 2010, 22(47):5374—5377.
[51]
NOVOSELOV K S, GEIM A K, MOROZOV S V, et al. Two-dimensional gas of massless Dirac fermions in graphene[J].Nature, 2005, 438(7065):197—200.
[52]
ZHANG Y B, TAN Y W, STORMER H L, et al. Experimental observation of the quantum Hall effect and Berry's phase in graphene[J].Nature, 2005, 438(7065):201—204.
[53]
NOVOSELOV K S, JIANG Z, ZHANG Y, et al. Room-temperature quantum hall effect in graphene[J].Science, 2007, 315(5817):1379—1379.
[54]
OHASHI Y, KOIZUMI T, YOSHIKAWA T, et al. Size effect in the in-plane electrical resistivity of very thin graphite crystals[J].TANSO, 1997, 180:235—238.
[55]
ZHANG Y B, SMALL J P, PONTIUS W V, et al. Fabrication and electric-field-dependent transport measurements of mesoscopic graphite devices[J].Applied Physics Letters, 2005, 86(7):073104-1—073104-3.
[56]
PERRET R, RULAND W. The microstructure of PAN-base carbon fibres[J].Journal of Applied Crystallography, 1970, 3:525—532.
[57]
王延相, 刘玉兰, 王丽民, 等. 由聚丙烯腈基碳纤维制备石墨烯薄膜的探索研究[J].功能材料, 2011, 42(3):520—523. WANG Yan-xiang, LIU Yu-lan, WANG Li-min, et al. Preparation and research of graphene sheets from PAN based carbon fibers[J]. Journal of Functional Materials, 2011, 42(3):520—523.
[58]
CHEN G H, WENG W G, WU D J. Preparation and characterization of graphite nanosheets from ultrasonic powdering technique[J].Carbon, 2004, 42(4):753—759.
[59]
CHEN G H, WENG W G, WU D J, et al. PMMA/graphite nanosheets composite and its conducting properties[J].European Polymer Journal, 2003, 39(12):2329—2335.
[60]
张洪艳, 王海泉, 陈国华. 新型导电填料——纳米石墨微片[J].塑料, 2006, 35(4):42—45. ZHANG Hong-yan, WANG Hai-quan, CHEN Guo-hua. A new kind of conducting filler—graphite nanosheets[J]. Plastics, 2006, 35(4):42—45.