Citation: MA Zhen-Hua, WANG Hui-Cai, YAO Xiao-Xia, LIU Ming-Qiang, MA Yu-Qiang. Simultaneous Determination of Catechol and Hydroquinone Based on Fluorinated Graphite Modified Glassy Carbon Electrode[J]. Chinese Journal of Analytical Chemistry, ;2015, 43(12): 1906-1912. doi: 10.11895/j.issn.0253-3820.150372 shu

Simultaneous Determination of Catechol and Hydroquinone Based on Fluorinated Graphite Modified Glassy Carbon Electrode

  • Corresponding author: WANG Hui-Cai, 
  • Received Date: 6 May 2015
    Available Online: 14 October 2015

    Fund Project: 本文系天津市与科技部中小企业创新基金(Nos.13ZXCXSY14200,13C26211200305) (Nos.13ZXCXSY14200,13C26211200305)天津市科技特派员目(No.14JCTPJC00500)以及国家自然科学基金(No.30900325)资助项目 (No.14JCTPJC00500)以及国家自然科学基金(No.30900325)

  • The fluorinated graphite was prepared by fluoridation of pre-oxidized graphite to fabricate modified glassy carbon electrode(FFPGO/GCE). The electrochemical behaviors of catechol(CC) and hydroquinone(HQ) at the modified electrode were investigated by cyclic voltammetry(CV). Effects of experimental parameters such as pH, scan rate, and amount of drop coating on the simultaneous determination of CC and HQ were investigated. Under the optimized conditions, in 0.2 mol/L phosphate buffer solutions(pH 6.0), CC and HQ could be simultaneously determined on the FFPGO/GCE by differential pulse voltammetry(DPV). The oxidation peak current showed a good linear relationship with concentration of CC and HQ in the range of 1.0-150μmol/L. The detection limits were 0.31μmol/L(S/N=3) for CC and 0.43μmol/L(S/N=3) for HQ. Furthermore, the modified electrode exhibited good reproducibility, stability and selectivity. The modified electrode was used for determination of CC and HQ in imitative water samples with satisfactory results.
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    1. [1]

      1 Saitoh K, Koichi K, Yabiku F, Noda Y, Porter M D, Shibukawa M. J. Chromatogr. A, 2008, 1180(1):66-72

    2. [2]

      2 Pistonesi M F, Di Nezio M S, Centurión M E, Palomeque M E, Lista A G, Band B S F. Talanta, 2006, 69(5):1265-1268

    3. [3]

      3 CuiH, Zhang Q, Myint A, Ge X, Liu L. J. Photochem. Photobio., 2006, 181(2):238-245

    4. [4]

      4 Bhanger M I, Niaz A, Shah A, Rauf A. Talanta, 2007, 72(2):546-553

    5. [5]

      5 Prathap M A, Satpati B, Srivastava R. Sens. Actuators B, 2013, 186:67-77

    6. [6]

      6 Gutes A, Cespedes F, Alegret S, Valle M. Biosens. Bioelectron., 2005, 20(8):1668-1673

    7. [7]

      7 ZHANG Hai-Jiang, WANG Chun-Yan, HUANG Jian-She, YOU Tian-Yan. Chinese J. Anal. Chem., 2009, 37(11):1622-1626 张海江, 王春燕, 黄建设, 由天艳. 分析化学, 2009, 37(11):1622-1626

    8. [8]

      8 WANG Chun-Yan, YOU Tian-Yan, TIAN Jian. Chinese J. Anal. Chem., 2011, 39(4):528-533 王春燕, 由天艳, 田 坚. 分析化学, 2011, 39(4):528-533

    9. [9]

      9 CHEN Huan, MA Wei, SUN Deng-Ming. Chinses Journal of Applied Chemistry, 2012, 29(5):576-584 陈 欢, 马 伟, 孙登明. 应用化学, 2012, 29(5):576-584

    10. [10]

      10 ZhouX B, He Z F, Lian Q W, Li Z, Jiang H, Lu X Q. Sens.Actuators B., 2014, 193:198-204

    11. [11]

      11 ZHAI Jiang-Li, HAO Jun-Xing. Journal of Analytical Science, 2015, 31(3):384-388 翟江丽, 郝俊兴. 分析科学学报, 2015, 31(3):384-388

    12. [12]

      12 Poh H L, Šimek P, Sofer Z, Pumera M. Chem. Eur. J., 2013, 19(8):2655-2662

    13. [13]

      13 Meduri P, Chen H, Xiao J, Martinez J J, Carlson T, Zhang J G, Deng Z D. J. Mater. Chem. A, 2013, 1(27):7866-7869

    14. [14]

      14 Yang Y, Lu G, Li Y, Liu Z, Huang X. ACS Appl. Mater. Inter., 2013, 5(24):13478-13483

    15. [15]

      15 Jeon K J, Lee Z, Pollak E, Moreschini L, Bostwick A, Park C M, Mendelsberg R, Radmilovic V, Kostecki R, Richardson T J, Rotenberg E. ACS Nano, 2011, 5(2):1042-1046

    16. [16]

      16 Samarakoon D K, Chen Z, Nicolas C, Wang X Q. Small, 2011, 7(7):965-969

    17. [17]

      17 Chia X, Ambrosi A, Otyepka M, Zboil R, Pumera M. Chem. Eur. J., 2014, 20(22):6665-6671

    18. [18]

      18 Madhu R, Palanisamy S, Chen S M, Piraman S. J. Electroanal.Chem., 2014, 727:84-90

    19. [19]

      19 Wang Z, Wang J, Li Z, Gong P, Liu X, Zhang L, Ren J, Wang H, Yang S. Carbon, 2012, 50(15):5403-5410

    20. [20]

      20 Pu L Y, Ma Y, Zhang W, Hu H, Zhou Y, Wang Q, Pei C. RSC Adv., 2013, 3(12):3881-3884

    21. [21]

      21 Zhao F G, Zhao G,Liu X H,Ge C W,Wang J T, Li B L,Wang Q G, Li W S,Chen Q Y. J. Mater. Chem. A, 2014, 2(23):8782-8789

    22. [22]

      22 Zhu C, Guo S, Fang Y, Dong S. ACS nano, 2010, 4(4):2429-2437

    23. [23]

      23 Guo H L, Wang X F, Qian Q Y, Wang F B, Xia X H. ACS nano, 2009, 3(9):2653-2659

    24. [24]

      24 Boopathi S, Narayanan T N, Kumar S S. Nanoscale, 2014, 6(17):10140-10146

    25. [25]

      25 Sun W, Xi M, Zhang L, Zhan T, Gao H, Jiao K. Electrochim. Acta, 2010, 56(1):222-226

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