Citation: LIU Shi-Long, ZHANG Hua, HU Xiao-Hui, QIU Yan-Ling, ZHU Zhi-Liang, ZHAO Jian-Fu. Analysis of Organophosphate Esters in Sediment Samples Using Gas Chromatography-Tandem Mass Spectrometry[J]. Chinese Journal of Analytical Chemistry, ;2016, 44(2): 192-197. doi: 10.11895/j.issn.0253-3820.150600 shu

Analysis of Organophosphate Esters in Sediment Samples Using Gas Chromatography-Tandem Mass Spectrometry

  • Corresponding author: ZHANG Hua, 
  • Received Date: 28 July 2015
    Available Online: 18 November 2015

    Fund Project:

  • An efficient extraction and purifying method coupled to gas chromatography-tandem mass spectrometry (GC-MS/MS) with electron impact (EI) detection was developed to determine eight organophosphate esters (OPEs) in sediment samples. The selected OPEs were extracted twice from the sediments through vortex oscillation and ultrasonic extraction using 20 mL of n-hexane and acetone mixture (1:1, V/V) for 10 min. Further purification by Florisil solid phase extraction (SPE) column, elution by 8 mL of ethyl acetate, concentration, and solvent exchanges for n-hexane were carried out. All target compounds were separated using the DB-5ms capillary column (30 m×0.25 mm×0.25 μm) and detected by tandem mass spectrometry with selected reaction monitoring, and determined by the internal standard method. The result showed that this pretreatment method was simple with less solvent consumption. At three spiked levels of 10, 20 and 50 μg/L, the recovery of selected OPEs (except TEP) was 80% to 120%, and the limit of detection was 0.31-64.5 ng/L, showing a good precision and accuracy.
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    1. [1]

      1 Martinez-Carballo E, Gonzalez-Barreiro C, Sitka A, Scharf S, Gans O. Total Environ., 2007, 388(1-3): 290-299

    2. [2]

      2 Castro-Jimenez J, Berrojalbiz N, Pizarro M, Dachs J. Environ. Sci. Technol., 2014, 48(6): 3203-3209

    3. [3]

      3 Salamova A, Hermanson M H, Hites R A. Environ. Sci. Technol., 2014, 48(11): 6133-6140

    4. [4]

      4 Moeller A, Xie Z, Caba A, Sturm R, Ebinghaus R. Environ. Pollut., 2011, 159(12): 3660-3665

    5. [5]

      5 Marklund A, Andersson B, Haglund P. J. Environ. Monit., 2005, 7(8): 814-819

    6. [6]

      6 YAN Xiao-Ju, HE Huan, PENG Ying, WANG Xiao-Meng, GAO Zhan-Qi, YANG Shao-Gui, SUN Cheng. Chinese J. Anal. Chem., 2012, 40(11): 1693-1696 严小菊, 何 欢, 彭 英, 王晓萌, 高占啟, 杨绍贵, 孙 成. 分析化学, 2012, 40(11): 1693-1696

    7. [7]

      7 Luo H, Xian Y, Guo X, Luo D, Wu Y, Lu Y, Yang B. The Scientific World Journal. 2014, 2014: 162465-162465

    8. [8]

      8 Fries E, Mihajlovic I. J. Environ. Monit., 2011, 13(10): 2692-2694

    9. [9]

      9 Mihajlovic I, Miloradov M V, Fries E. Environ. Sci. Technol., 2011, 45(6): 2264-2269

    10. [10]

      10 Ma Y, Cui K, Zeng F, Wen J, Liu H, Zhu F, Ouyang G, Luan T, Zeng Z. Anal. Chim. Acta, 2013, 786: 47-53

    11. [11]

      11 Kim J W, Isobe T, Chang K H, Amano A, Maneja R H, Zamora P B, Siringan F P, Tanabe S. Environ. Pollut., 2011, 159(12): 3653-3659

    12. [12]

      12 Campone L, Piccinelli A L, Ostman C, Rastrelli L. Anal. Bioanal.Chem., 2010, 397(2): 799-806

    13. [13]

      13 Schindler B K, Foerster K, Angerer J. J. Chromatogr. B, 2009, 877(4): 375-381

    14. [14]

      14 Sundkvist A M, Olofsson U, Haglund P. J. Environ. Monit., 2010, 12(4): 943-951

    15. [15]

      15 Carlsson H, Nilsson U, Becker G, Ostman C. Environ. Sci. Technol., 1997, 31(10): 2931-2936

    16. [16]

      16 Follmann W, Wober J. Toxicol. Lett., 2006, 161(2): 124-134

    17. [17]

      17 Meeker J D, Stapleton H M. Environ. Health Perspect., 2010, 118(3): 318-323

    18. [18]

      18 LU Jian-Xia, JI Wen, MA Sheng-Tao, YU Zhi-Qiang, WANG Zhao, LI Han, REN Guo-Fa, FU Jia-Mo. Chinese J. Anal. Chem., 2014, 42(6): 859-865 鹿建霞, 季 雯, 马盛韬, 于志强, 王 昭, 李 寒, 任国发, 傅家谟. 分析化学, 2014, 42(6): 859-865

    19. [19]

      19 LIN Zhu-Guang, CHEN Mei-Yu, ZHANG Li-Li, SUN Ruo-Nan, MA Yu, TU Feng-Zhang, LI Xiao-Bo, CHEN Zhao-Bin. Journal of Instrumental Analysis, 2007, 26(3): 331-334 林竹光, 陈美瑜, 张莉莉, 孙若男, 马 玉, 涂逢樟, 李小波, 陈招斌. 分析测试学报, 2007, 26(3): 331-334

    20. [20]

      20 Cristale J, Lacorte S. J. Chromatogr. A, 2013, 1305: 267-275

    21. [21]

      21 Garcia-Lopez M, Rodriguez I, Cela R, Kroening K K, Caruso J A. Talanta, 2009, 79(3): 824-829

    22. [22]

      22 Marklund A, Andersson B, Haglund P. Environ. Sci. Technol., 2005, 39(19): 7423-7429

    23. [23]

      23 Garcia-Lopez M, Rodriguez I, Cela R. J. Chromatogr. A, 2009, 1216(42): 6986-6993

    24. [24]

      24 van den Eede N, Dirtu A C, Neels H, Covaci A. Environ. Int., 2011, 37(2): 454-461

    25. [25]

      25 Garcia M, Rodriguez I, Cela R. J. Chromatogr. A, 2007, 1152(1-2): 280-286

    26. [26]

      26 Chung H W, Ding W H. Anal. Bioanal. Chem., 2009, 395(7): 2325-2334

    27. [27]

      27 Cristale J, Garcia V A, Barata C, Lacorte S. Environ. Int., 2013, 59: 232-243

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