Citation: Wu Kuangheng, Zhou Yawei, Ma Xianyin, Ding Chen, Cai Wenbin. Controlled Synthesis of Gold-Platinum Catalysts for Ethanol Electro-oxidation Reaction[J]. Acta Chimica Sinica, ;2018, 76(4): 292-297. doi: 10.6023/A17110478 shu

Controlled Synthesis of Gold-Platinum Catalysts for Ethanol Electro-oxidation Reaction

  • Corresponding author: Cai Wenbin, wbcai@fudan.edu.cn
  • Received Date: 2 November 2017
    Available Online: 9 April 2018

    Fund Project: 973 program 2015CB932303the National Natural Science Foundation of China 21733004Science and Technology Commission of Shanghai Mu-nicipality 17520711200Project supported by the National Natural Science Foundation of China (Nos. 21473039, 21733004), Science and Technology Commission of Shanghai Mu-nicipality (No. 17520711200) and 973 program (No. 2015CB932303)the National Natural Science Foundation of China 21473039

Figures(8)

  • Ethanol oxidation reaction (EOR) is a common anode process for direct ethanol fuel cell (DEFC) and ethanol reforming electrolyzer. Au@Pt and AuPt alloy are widely used bimetallic catalysts, yet no comparative study has been reported of electrocatalysis of EOR on these two differently structured catalysts. The present work aims to synthesize and characterize carbon supported Au@Pt and AuPt with controlled composition and size, and compare their electrocatalytic activities and stabilities toward EOR in alkaline media. For the synthesis of Au@Pt/C, a 5-nm Au colloid was first obtained by adding excessive amount of sodium borohydride to a chloroauric acid precursor containing sodium citrate with a mixed ice-water bath. CO gas was bubbled into the Au colloidal solution at 60℃ under strong stirring to reduce a desired amount of potassium tetrachloroplatinate(Ⅱ) to terminate Pt quasi-monolayer shell on Au nanoparticle core. A sonicated carbon black (Vulcan XC-72) aqueous slurry was then dropwise added to the above Au@Pt colloid, and the mixture was kept stirring for 48 h to ensure the exhaustive loading of Au@Pt nanoparticles onto the carbon support. For the synthesis of AuPt/C with the same Au:Pt molar ratio and metal loading as that for Au@Pt/C, coreduction of the Au(Ⅲ) and Pt(Ⅱ) species was attained by using sodium borohydride as the reducing agent with the rest procedures being same as the above mentioned. X-ray diffractometry (XRD) revealed that the diffraction peaks for Au@Pt/C were virtually same as those for Au/C, consistent with a Pt quasi-monolayer, while the diffraction peaks for AuPt/C located in between those for Au/C and Pt/C. X-ray photoelectron spectroscopy (XPS) results were consitent with the different structures of the two catalysts, and the Pt core level shift suggested an upshift of Pt d-band center for both bimetallic catalysts. Cyclic voltammetry and chronoamperometry revealed markedly increased EOR current on Au@Pt/C and AuPt/C, as compared to that of Pt/C and Au/C. CO-stripping voltammetry on Au@Pt/C and AuPt/C indicated that surface reconstruction occurred by potential cycling, resulting in a decrease of exposed Pt sites but not the electrocatalytic activities. 1H NMR analysis confirmed the C2 pathway is predominant. Nevertheless, Au@Pt/C outperformed AuPt/C and Pt/C with a lower onset oxidation potential and a higher peak current for EOR, as well as a slightly higher selectivity toward C1 pathway. Although the synergetic effect of Au-Pt bimetallic interface for EOR is not well understood, the enhanced adsorption of ethanol, OH, acetyl and CO on Pt sites may be accountable for the observed results.
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    1. [1]

      Li, H. H.; Zhao, S.; Gong, M.; Cui, C. H.; He, D.; Liang, H. W.; Liang, W.; Yu, S. H. Angew. Chem., Int. Ed. 2013, 52, 7472.  doi: 10.1002/anie.201302090

    2. [2]

      Coutanceau, C.; Baranton, S. WIREs Energy Environ. 2016, 5, 388.  doi: 10.1002/wene.193

    3. [3]

      de Lucas-Consuegra, A.; Ana, R.; Calcerrada, A. B.; Linares, J. J.; Horwat, D. J. Power Sources 2016, 321, 248.  doi: 10.1016/j.jpowsour.2016.05.004

    4. [4]

      Chen, H. M.; Xing, Z. L.; Zhu, S. Q.; Zhang, L. L.; Chang, Q. W.; Huang, J. L.; Cai, W. B.; Kang, N.; Zhong, C. J.; Shao, M. H. J. Power Sources 2016, 321, 264.  doi: 10.1016/j.jpowsour.2016.04.072

    5. [5]

      Lamy, C.; Lima, A.; LeRhun, V.; Delime, F.; Coutanceau, C.; Léger, J. M. J. Power Sources 2002, 105, 283  doi: 10.1016/S0378-7753(01)00954-5

    6. [6]

      Rao, L.; Jiang, Y. X.; Zhang, B. W.; You, L. X. H.; Li, Z. H.; Sun, S. G. Prog. Chem. 2014, 26, 727(in Chinese).
       

    7. [7]

      Zheng, H. T.; Li, Y.; Chen, S.; Shen, P. K. J. Power Sources 2006, 163, 371.  doi: 10.1016/j.jpowsour.2006.09.062

    8. [8]

      Wang, Y.; Zou, S.; Cai, W. B. Catalysts 2015, 5, 1507.  doi: 10.3390/catal5031507

    9. [9]

      Xu, C. W.; Cheng, L. Q.; Shen, P. K.; Liu, Y. L. Electrochem. Commun. 2007, 9, 997.  doi: 10.1016/j.elecom.2006.12.003

    10. [10]

      Wang, Y.; Jiang, K.; Cai, W. B. Electrochim. Acta 2015, 162, 100.  doi: 10.1016/j.electacta.2014.11.182

    11. [11]

      Adzic, R. R.; Zhang, J.; Sasaki, K.; Vukmirovic, M. B.; Shao, M.; Wang, J. X.; Nilekar, A. U.; Mavrikakis, M.; Valerio, J. A.; Uribe, F. Top. Catal. 2007, 46, 249.  doi: 10.1007/s11244-007-9003-x

    12. [12]

      Mulvaney, S. P.; Keating, C. D. Anal. Chem. 2000, 72, 145.  doi: 10.1021/a10000155

    13. [13]

      Enache, D. I.; Edwards, J. K.; Landon, P.; Solsona-Espriu, B.; Carley, A. F.; Herzing, A. A.; Watanabe, M.; Kiely, C. J.; Knight, D. W.; Hutchings, G. J. Science 2006, 311, 362.  doi: 10.1126/science.1120560

    14. [14]

      Song, H. M.; Anjum, D. H.; Sougrat, R.; Hedhili, M. N.; Khashab, N. M. J. Mater. Chem. 2012, 22, 25003.  doi: 10.1039/c2jm35281h

    15. [15]

      Chen, Y. G.; Zhuang, L.; Lu, J. T. Chin. J. Catal. 2007, 28, 870(in Chinese).  doi: 10.3321/j.issn:0253-9837.2007.10.007

    16. [16]

      Li, J. F.; Yang, Z. L.; Ren, B.; Liu, G. K.; Fang, P. P.; Jiang, Y. X.; Wu, D. Y.; Tian, Z. Q. Langmuir 2006, 22, 10372.  doi: 10.1021/la061366d

    17. [17]

      Dai, Y.; Chen, S. L. ACS Appl. Mater. 2014, 7, 823.
       

    18. [18]

      Brankovic, S. R.; Wang, J. X.; Adžić, R. R. Surf. Sci. 2001, 474, 173.  doi: 10.1016/S0039-6028(00)01103-1

    19. [19]

      Liu, Y.; Gokcen, D.; Bertocci, U.; Moffat, T. P. Science 2012, 338, 1327.  doi: 10.1126/science.1228925

    20. [20]

      Engelbrekt, C.; Šešelj, N.; Poreddy, R.; Riisager, A.; Ulstrup, J.; Zhang, J. D. J. Mater. Chem. A 2016, 4, 3278.  doi: 10.1039/C5TA08922K

    21. [21]

      Zhou, Y. W.; Du, C. Y.; Han, G.; Gao, Y. Z.; Yin, G. P. Electrochim. Acta 2016, 217, 203.  doi: 10.1016/j.electacta.2016.09.070

    22. [22]

      Xu, C. X.; Wang, R. Y.; Chen, M. W.; Zhang, Y.; Ding, Y. Phys. Chem. Chem. Phys. 2010, 12, 239.  doi: 10.1039/B917788D

    23. [23]

      Zeng, J.; Yang, J.; Lee, J. Y.; Zhou, W. J. Phys. Chem. B 2006, 110, 24606.  doi: 10.1021/jp0640979

    24. [24]

      Xu, Y. Y.; Dong, Y. N.; Shi, J.; Xu, M. L.; Zhang, Z. F.; Yang, X. K. Catal. Commun. 2011, 13, 54.  doi: 10.1016/j.catcom.2011.06.018

    25. [25]

      Ye, W.; Kou, H.; Liu, Q.; Yan, J.; Zhou, F.; Wang, C. Int. J. Hydrogen Energ. 2012, 37, 4088.  doi: 10.1016/j.ijhydene.2011.11.132

    26. [26]

      Kitchin, J. R.; Nørskov, J. K.; Barteau, M. A.; Chen, J. G. Phys. Rev. Lett. 2004, 93, 156801.  doi: 10.1103/PhysRevLett.93.156801

    27. [27]

      Demirci, U. B. J. Power Sources 2007, 173, 11.  doi: 10.1016/j.jpowsour.2007.04.069

    28. [28]

      Wakisaka, M.; Mitsui, S.; Hirose, Y.; Kawashima, K.; Uchida, H.; Watanabe, M. J. Phys. Chem. B 2006, 110, 23489.  doi: 10.1021/jp0653510

    29. [29]

      Zhu, C.; Hai, Y.; Zhao, Z. G.; Yang, Y. Y. Acta Chim. Sinica 2017, 76, 30. in Chinese
       

    30. [30]

      Zhou, W.; Lee, J. Y. Electrochem. Commun. 2007, 9, 1725.  doi: 10.1016/j.elecom.2007.03.016

    31. [31]

      Maillard, F.; Savinova, E. R.; Stimming, U. J. Electroanal. Chem. 2007, 599, 221.  doi: 10.1016/j.jelechem.2006.02.024

    32. [32]

      Qin, Y. H.; Yang, H. H.; Zhang, X. S.; Li, P.; Zhou, X. G.; Niu, L.; Yuan, W. K. Carbon 2010, 48, 3323.  doi: 10.1016/j.carbon.2010.05.010

    33. [33]

      Liang, Z. X.; Zhao, T. S.; Xu, J. B.; Zhu, L. D. Electrochim. Acta 2009, 54, 2203  doi: 10.1016/j.electacta.2008.10.034

    34. [34]

      Lebedeva, N. P.; Koper, M. T. M.; Feliu, J. M.; Van Santen, R. A. J. Electroanal. Chem. 2002, 524, 242.

    35. [35]

      McCallum, C.; Pletcher, D. J. Electroanal. Chem. 1976, 70, 277.  doi: 10.1016/S0022-0728(76)80196-9

    36. [36]

      Gilman, S. J. Phys. Chem. 1964, 68, 70.  doi: 10.1021/j100783a013

    37. [37]

      Suntivich, J.; Xu, Z.; Carlton, C. E.; Kim, J.; Han, B.; Lee, S. W.; Bonnet, N.; Marzari, N.; Allard, L. F.; Gasteiger, H. A.; Hamad-Schifferli, K.; Shao-Horn, Y. J. Am. Chem. Soc. 2013, 135, 7985.  doi: 10.1021/ja402072r

    38. [38]

      Chen, G. L.; Chen, S. P.; Zhen, C. H.; Zhou, Z. Y.; Sun, S. G. Acta Chim. Sinica 2001, 59, 1253(in Chinese).  doi: 10.3321/j.issn:0567-7351.2001.08.016
       

    39. [39]

      Bayer, D.; Berenger, S.; Joos, M.; Cremers, C.; Tübke, J. Int. J. Hydrogen Energ. 2010, 35, 12660.  doi: 10.1016/j.ijhydene.2010.07.102

    40. [40]

      Teng, X. In Materials and Processes for Energy: Communicating Current Research and Technological Developments, Atrazhev, V. V. ; Burlatsky, S. F., Formatex Research Center, Durham, 2013, pp. 473~484.

    41. [41]

      Wang, S. Y.; Kristian, N.; Jiang, S. P.; Wang, X. Nanotechnology 2008, 20, 025605.

    42. [42]

      Wang, H.; Jiang, K.; Chen, Q.; Xie, Z.; Cai, W. B. Chem. Commun. 2016, 52, 374.  doi: 10.1039/C5CC06551H

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