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Process in preparation of metal-catalyzed graphene

Yu Hai-Ling Zhu Jia-Qi Cao Wen-Xin Han Jie-Cai

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Process in preparation of metal-catalyzed graphene

Yu Hai-Ling, Zhu Jia-Qi, Cao Wen-Xin, Han Jie-Cai
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  • Graphene, which is regarded as a new carbon material, has attracted much attention of scientists. Graphene holds the promise for applications in optoelectronics and microelectronics, owing to many unique physical and chemical properties. The large-scale applications are restricted by controllable synthesis of large-size graphene. In this paper we present the advantages and disadvantages of preparation processes of graphene. The recent advances in the process of metal-catalyzed graphene in terms of lay number control and large area synthesis are discussed. The graphene prepared by metal-catalyzed solid carbon source has large area and high quality and is thin and homogeneous. We review the latest progress in graphene transformation mechanism, point out the limitations of current study and prospect the future development in the graphene transformation mechanism.
    • Funds: Project supported by the National Natural Science Foundation of China (Grant Nos. 51222205, 51072039), the Program for New Century Excellent Talents in University (Grant No. NCET-10-0070), and the Ph.D. Programs Foundation of Ministry of Education of China (Grant No. 20122302110035).
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    Novoselov K 2011 Rev. Mod. Phys. 83 837

    [2]

    Novoselov K 2004 Science 306 66

    [3]

    Peierls R 1935 Annals de l'I. H. P. 5 p177

    [4]

    Landau L 1937 Phys. Z. Sowjetunion 11 p26

    [5]

    Stoller M D, Park S, Zhu Y, An J, Ruoff R S 2008 Nano Lett. 8 3498

    [6]

    Nair R R, Blake P, Grigorenko A N, Novoselov K S, Booth T J, Stauber T, Peres N M R, Geim A K 2008 Science 320 1308

    [7]

    Stauber T, Peres N M R, Geim A K 2008 Phys. Rev. B 78 085418

    [8]

    Lee C, Wei X, Kysar J W, Hone J 2008 Science 321 385

    [9]

    Balandin A A, Ghosh S, Bao W Z, Calizo I, Teweldebrhan D, Miao F, Lau C N 2008 Nano Lett. 8 902

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    Areshkin D A, White C T 2007 Nano Lett. 7 3253

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    Geim A K, Novoselov K S 2007 Nat. Mater. 6 183

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    Wei D, Liu Y 2010 Adv. Mater. 22 3225

    [13]

    Geim A K 2009 Science 324 1530

    [14]

    Singh V, Joung D, Zhai L, Das S, Khondaker S I, Seal S 2011 Prog. Mater Sci. 56 1178

    [15]

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    Park S, Ruoff R S 2009 Nat. Nanotechnol. 4 217

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    Weatherup R S, Bayer B C, Blume R, Ducati C, Baehtz C, Schlögl R, Hofmann S 2011 Nano Lett. 11 4154

    [20]

    Huang H, Chen W, Chen S, Wee A T S 2008 Acs Nano 2 2513

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    Li X, Cai W, An J, Kim S, Nah J, Yang D, Piner R, Velamakanni A, Jung I, Tutuc E, Banerjee S K, Colombo L, Ruoff R S 2009 Science 324 1312

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    Bae S, Kim H, Lee Y, Xu X F, Park J S, Zheng Y, Balakrishnan J, Lei T, Kim H R, Song Y I, Kim Y J, Kim K S, Ozyilmaz B, Ahn J H, Hong B H, Iijima S 2010 Nat. Nanotechnol. 5 574

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    Chen Z P, Ren W C, Liu B L, Gao L B, Pei S F, Wu Z S, Zhao J P, Cheng H M 2010 Carbon 48 3543

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    Wei D C, Liu Y Q, Zhang H L, Huang L P, Wu B, Chen J Y, Yu G 2009 JACS 131 11147

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    Ren W C, Gao L B, Ma L P, Cheng H M 2011 New Carbon Mater. 71 (in Chinese) [任文才 高力波, 马来鹏, 成会明 2011 新型炭材料 71]

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    Juang Z Y, Wu C Y, Lo C W, Chen W Y, Huang C F, Hwang J C, Chen F R, Leou K C, Tsai C H 2009 Carbon 47 2026

    [35]

    Hofrichter J, Szafranek B u N, Otto M, Echtermeyer T J, Baus M, Majerus A, Geringer V, Ramsteiner M, Kurz H 2010 Nano Lett. 10 36

    [36]

    Fujita J I, Ueki R, Miyazawa Y, Ichihashi T 2009 J. Vac. Sci. Technol. B 27 3063

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    Zheng M, Takei K, Hsia B, Fang H, Zhang X, Ferralis N, Ko H, Chueh Y L, Zhang Y, Maboudian R, Javey A 2010 Appl. Phys. Lett. 96 063110

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    Ji H X, Hao Y F, Ren Y J, Charlton M, Lee W H, Wu Q Z, Li H F, Zhu Y W, Wu Y P, Piner R, Ruoff R S 2011 Acs Nano 5 7656

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    Rao C N R, Biswas K, Subrahmanyam K S, Govindaraj A 2009 J. Mater. Chem. 19 2457

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  • Abstract views:  7838
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Publishing process
  • Received Date:  17 June 2012
  • Accepted Date:  01 August 2012
  • Published Online:  05 January 2013

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