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Simultaneous synthesis of diverse graphene via electrochemical reduction of graphene oxide
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  • 作者:Yu Shang (1)
    Dong Zhang (1)
    Yanyun Liu (1)
    Yong Liu (1)

    1. Key Laboratory of Advanced Civil Engineering Materials
    ; Ministry of Education ; School of Materials Science and Engineering ; Tongji University ; Caoan Road 4800 ; Shanghai ; 201804 ; People鈥檚 Republic of China
  • 关键词:Electrophoretic deposition ; Electrochemical reduction ; Paper ; like graphene ; Crumpled graphene ; Graphene scroll
  • 刊名:Journal of Applied Electrochemistry
  • 出版年:2015
  • 出版时间:May 2015
  • 年:2015
  • 卷:45
  • 期:5
  • 页码:453-462
  • 全文大小:1,119 KB
  • 参考文献:1. Geim, AK, Novoselov, KS (2007) The rise of graphene. Nat Mater 6: pp. 183-191 CrossRef
    2. Katsnelson, MI (2007) Graphene: carbon in two dimensions. Mater Today 10: pp. 20-27 CrossRef
    3. Rogers, JA (2008) Electronic materials: making graphene for macroelectronics. Nat Nanotechnol 3: pp. 254-255 CrossRef
    4. Park, S, Ruoff, RS (2009) Chemical methods for the production of graphenes. Nat Nanotechnol 4: pp. 217-224 CrossRef
    5. Mao, S, Pu, H, Chen, J (2012) Graphene oxide and its reduction: modeling and experimental progress. RSC Adv 2: pp. 2643-2662 CrossRef
    6. Luo, D, Zhang, G, Liu, J (2011) Evaluation criteria for reduced graphene oxide. J Phys Chem C 115: pp. 11327-11335 CrossRef
    7. Pei, SF, Cheng, HM (2012) The reduction of graphene oxide. Carbon 50: pp. 3210-3228 CrossRef
    8. Liu, N, Luo, F, Wu, HX, Liu, YH, Zhang, C, Chen, J (2008) One-step ionic-liquid-assisted electrochemical synthesis of ionic-liquid-functionalized graphene sheets directly from graphite. Adv Funct Mater 18: pp. 1518-1525 CrossRef
    9. Liu, S, Wang, J, Zeng, J (2010) 鈥淕reen鈥?electrochemical synthesis of Pt/graphene sheet nanocomposite film and its electrocatalytic property. J Power Sour 195: pp. 4628-4633 CrossRef
    10. Wang, Z, Zhou, X, Zhang, J (2009) Direct electrochemical reduction of single-layer graphene oxide and subsequent functionalization with glucose oxidase. J Phys Chem C 113: pp. 14071-14075 CrossRef
    11. Ramesha, GK, Sampath, S (2009) Electrochemical reduction of oriented graphene oxide films: an in situ Raman spectroelectrochemical study. J Phys Chem C 113: pp. 7985-7989 CrossRef
    12. Shao, Y, Wang, J, Engelhard, M, Wang, C, Lin, Y (2010) Facile and controllable electrochemical reduction of graphene oxide and its applications. J Mater Chem 20: pp. 743-748 CrossRef
    13. Raj, MA, John, SA (2013) Fabrication of electrochemically reduced graphene oxide films on glassy carbon electrode by self-assembly method and their electrocatalytic application. J Phys Chem C 117: pp. 4326-4335 CrossRef
    14. Peng, XY, Liu, XX, Diamond, D (2011) Synthesis of electrochemically-reduced graphene oxide film with controllable size and thickness and its use in supercapacitor. Carbon 49: pp. 3488-3496 CrossRef
    15. Hasan, SA, Rigueur, JL, Harl, RR, Krejci, AJ, Gonzalo-Juan, I, Rogers, BR, Dickerson, JH (2010) Transferable graphene oxide films with tunable microstructures. ACS Nano 4: pp. 7367-7372 CrossRef
    16. Toh, SY, Loh, KS, Kamarudin, SK, Daud, WRW (2014) Graphene production via electrochemical reduction of graphene oxide: synthesis and characterization. Chem Eur J 251: pp. 422-434
    17. Chen, L, Tang, Y, Wang, K, Luo, S (2011) Direct electrodeposition of reduced graphene oxide on glassy carbon electrode and its electrochemical application. Electrochem Commun 13: pp. 133-137 CrossRef
    18. Liu, C, Wang, K, Luo, S, Tang, Y, Chen, L (2011) Direct electrodeposition of graphene enabling the one-step synthesis of graphene鈥搈etal nanocomposite films. Small 7: pp. 1203 CrossRef
    19. An, SJ, ZhuY, Lee SH (2010) Thin film fabrication and simultaneous anodic reduction of deposited graphene oxide platelets by electrophoretic deposition. J Phys Chem Lett 1: pp. 1259-1263 CrossRef
    20. Tong, H, Zhu, J, Chen, J, Han, Y, Yang, S, Ding, B, Zhang, X (2013) Electrochemical reduction of graphene oxide and its electrochemical capacitive performance. J Solid State Electrochem 17: pp. 2857-2863 CrossRef
    21. Guo, HL, Wang, XF, Qian, QY, Wang, FB, Xia, XH (2009) A green approach to the synthesis of graphene nanosheets. ACS Nano 9: pp. 2653-2659 CrossRef
    22. Li, W, Liu, J, Yan, C (2013) Reduced graphene oxide with tunable C/O ratio and its activity towards vanadium redox pairs for an all vanadium redox flow battery. Carbon 55: pp. 313-320 CrossRef
    23. Zhang, X, Zhang, D, Chen, Y, Sun, X, Ma, Y (2012) Electrochemical reduction of graphene oxide films: preparation, characterization and their electrochemical properties. Chin Sci Bull 57: pp. 3045-3050 CrossRef
    24. Zhou, Y, Chen, J, Wang, F, Sheng, Z, Xia, X (2010) A facile approach to the synthesis of highly electroactive Pt nanoparticles on graphene as an anode catalyst for direct methanol fuel cells. Chem Commun 46: pp. 5951-5953 CrossRef
    25. Liu, S, Ou, J, Wang, J, Liu, X, Yang, S (2011) A simple two-step electrochemical synthesis of graphene sheets film on the ITO electrode as supercapacitors. J Appl Electrochem 41: pp. 881-884 CrossRef
    26. Eda, G, Fanchini, G, Chhowalla, M (2008) Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat Nanotechnol 3: pp. 270-274 CrossRef
    27. Dogan, HO, Ekinci, D, Demir, U (2013) Atomic scale imaging and spectroscopic characterization of electrochemically reduced graphene oxide. Surf Sci 611: pp. 54-59 CrossRef
    28. Zhou, M, Wang, YL, Zhai, YM, Zhai, JF, Ren, W, Wang, F, Dong, S (2009) Controlled synthesis of large-area and patterned electrochemically reduced graphene oxide films. Chem Eur J 15: pp. 6116-6120 CrossRef
    29. Kauppila, J, Kunnas, P, Damlin, P (2013) Electrochemical reduction of graphene oxide films in aqueous and organic solutions. Electrochim Acta 89: pp. 84-89 CrossRef
    30. Hong, S, Jung, S, Kang, S, Kim, Y, Chen, X, Stankovich, S, Ruoff, SR, Baik, S (2008) Dielectrophoretic deposition of graphite oxide soot particles. J Nanosci Nanotechnol 8: pp. 424-427 CrossRef
    31. Acik, M, Lee, G, Mattevi, C, Pirkle, A, Wallace, RM, Chhowalla, M, Chabal, Y (2011) The role of oxygen during thermal reduction of graphene oxide studied by infrared absorption spectroscopy. J Phys Chem C 115: pp. 19761-19781 CrossRef
    32. Harima, Y, Setodoi, S, Imae, I, Komaguchi, K, Ooyama, Y, Ohshita, J (2011) Electrochemical reduction of graphene oxide in organic solvents. Electrochim Acta 56: pp. 5363-5368 CrossRef
    33. Viculis, LM, Mack, JJ, Kaner, RB (2003) A chemical route to carbon nanoscrolls. Science 299: pp. 1361 CrossRef
    34. Mattevi, C, Eda, G, Agnoli, S, Miller, S, Mkhoyan, KA, Celik, O, Chhowalla, M (2009) Evolution of electrical, chemical, and structural properties of transparent and conducting chemically derived graphene thin films. Adv Funct Mater 19: pp. 2577-2583 CrossRef
    35. Stankovich, S, Dikin, DA, Piner, RD, Kohlhaas, KA, Kleinhammes, A, Jia, YY, Wu, Y, Nguyen, ST, Ruoff, RS (2007) Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon 45: pp. 1558-1565 CrossRef
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Electrochemistry
    Physical Chemistry
    Industrial Chemistry and Chemical Engineering
  • 出版者:Springer Netherlands
  • ISSN:1572-8838
文摘
In this paper, an electrochemical approach was described for preparing graphene with different microstructures, starting from aqueous solutions of graphene oxide (GO), processed under direct voltage. The process relied on the electrochemical reduction of GO sheets deposited on the surface of Cu electrode. The same electrode is first used as the anode for the electrophoretic deposition of GO film, and then as the cathode, allowing for the effective reduction of GO. Paper-like graphene was observed on the electrode after the reduction, while crumpled graphene existed in the solution, which could be further transformed to graphene scroll by sonication. The samples were characterized by scanning electron microscopy, X-ray diffraction, X-ray photoelectron spectroscopy, Fourier transform infrared spectroscopy, and thermogravimetric analysis. The results showed that the oxygen functional groups are significantly removed after the reduction. The mechanism for this method was also proposed in this paper. Moreover, a scale-up device was designed to make this method more applicable for commercialization. This method has the potential for large-scale production of graphene.

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