Professional Committee of Rock and Mineral Testing Technology of the Geological Society of China, National Geological Experiment and Testing CenterHost
2023 Vol. 42, No. 2
Article Contents

XUE Zhifeng, WANG Gaohong, SHANG Wei, YANG Chun, LI Hua, FENG Juan, AI Hao, CHENG Xing. Determination of Iodide in Groundwater by Suppressed Conductance-Ion Chromatography[J]. Rock and Mineral Analysis, 2023, 42(2): 338-345. doi: 10.15898/j.cnki.11-2131/td.202202240033
Citation: XUE Zhifeng, WANG Gaohong, SHANG Wei, YANG Chun, LI Hua, FENG Juan, AI Hao, CHENG Xing. Determination of Iodide in Groundwater by Suppressed Conductance-Ion Chromatography[J]. Rock and Mineral Analysis, 2023, 42(2): 338-345. doi: 10.15898/j.cnki.11-2131/td.202202240033

Determination of Iodide in Groundwater by Suppressed Conductance-Ion Chromatography

More Information
  • BACKGROUND

    In an environment without foreign iodine food, the iodine content of water is an important index to measure the iodine intake of the human body, so the accurate determination of iodide content in drinking water has a crucial role in human health. The detection limit of ion chromatography-amperometric detection method is generally lower than that of conductance detection method, and the sensitivity is higher. This method is suitable for the determination of trace iodide in water, but the apparent peak time is later than that of the conductance detection method. Under the same test conditions, for the ion chromatography-hydroxide eluent detection method for the determination of iodide in water, the peak time is obviously better than that of the carbonate body eluent detection method. Using carbonate eluent to analyze iodide requires adding toxic organic improvers, which is complicated, difficult to elute, has a long analysis time, high detection limit and low sensitivity.

    OBJECTIVES

    IonPac AS23 column with alkanol-based quaternary ammonium functional group has strong hydrophilicity and can maintain high capacity in a wide pH range (0-14), which is suitable for hydroxide and carbonate leaching systems. Based on this, a method for the determination of iodide in groundwater by suppressed conduction-ion chromatography was developed.

    METHODS

    IonPac AS23 (4mm×250mm) anion analysis column and IonPac AS23 anion protection column, Dionex AERS 500(4mm) anion inhibited conductivity detector, HPIC separation method, were used to detect iodide in groundwater with 50mmol/L KOH eluent (hydroxide eluent, the product after conductivity inhibition is zero conductivity water, providing an ideal conductivity baseline) at a flow rate of 1.2mL/min (the concentration and flow rate of the eluent increased, and the retention time was shortened) and a suppressive conductance detector current of 125mA (the current increased, the instrument detection sensitivity increased). The sample volume was 250μL, and the samples were filtered through a 0.45μm water microporous filter membrane. 10mL of initial filtrate was discarded, and about 10mL of subsequent filtrate was collected. After that the iodide in the groundwater samples was detected.

    RESULTS

    The chromatographic peak separation was good, peak shape was symmetrical, and no trailing extension. The iodide peak emerged in 8.980min, the detection limit of the method was 0.5μg/L, the correlation coefficient of the calibration curve was 0.9998, and the linear range was wide (0. 01-2mg/L).

    CONCLUSIONS

    This method has a lower detection limit than that of the existing standard method for the determination of iodide in water, shorter peak time, and the detection range is better than that of the existing ion chromatography method. The experimental results show that the peak time is faster than that reported by its predecessors. This method is used to determine iodide in groundwater and is not disturbed by seven inorganic anions (F-, Cl-, NO3-, NO2-, SO42-, PO43-, Br-) in water. This method improves the accuracy of the determination of iodide in groundwater by alkanol-based quaternary ammonium functional group column AS23 under the hydroxide eluent system.

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  • [1] 张媛静, 张玉玺, 向小平, 等. 沧州地区地下水碘分布特征及其成因浅析[J]. 地学前缘, 2014, 21(4): 59-65.

    Google Scholar

    Zhang Y J, Zhang Y X, Xiang X P, et al. Analysis on the distribution characteristics and genesis of iodine of Cangzhou groundwater[J]. Earth Science Frontiers, 2014, 21(4): 59-65.

    Google Scholar

    [2] Shinoda T, Miyamoto N, Kuromoto T, et al. Pyrohydrolysis coupled to ion chromatography for sensitive determination of iodine in food-related materials[J]. Analytical Letters, 2012, 45(8): 862-871. doi: 10.1080/00032719.2012.655659

    CrossRef Google Scholar

    [3] 宫霞, 蓝倩云, 黄玲. 上海市饮用水中微量元素碘含量的检测与分析[J]. 环境工程, 2015, 33(S1): 989-991.

    Google Scholar

    Gong X, Lan Q Y, Huang L. Detection and analysis of iodine content in drinking water of Shanghai[J]. Environmental Engineering, 2015, 33(S1): 989-991.

    Google Scholar

    [4] 杨瑞丰. 地表水中碘化物含量测定方法研究[J]. 水资源开发与管理, 2019(7): 29-32.

    Google Scholar

    Yang R F. Determination of iodide content in surface water[J]. Water Resources Development and Management, 2019(7): 29-32.

    Google Scholar

    [5] 寇志华, 刘克克, 任增辉. 生活饮用水中碘化物检测方法的探讨[J]. 河南预防医学杂志, 2020, 31(12): 910-911, 933.

    Google Scholar

    Kou Z H, Liu K K, Ren Z H. Discussion on the determination method of iodide in drinking water[J]. Henan Journal of Preventive Medicine, 2020, 31(12): 910-911, 933.

    Google Scholar

    [6] 贾亮亮, 尹云. 催化分光光度法测定水中微量碘的方法优化[J]. 化学试剂, 2020, 42(11): 1341-1344.

    Google Scholar

    Jia L L, Yin Y. Optimization of catalytic spectrophoto-metric method for determination of trace iodine in water[J]. Chemical Reagents, 2020, 42(11): 1341-1344.

    Google Scholar

    [7] 杨瑞丰. 离子色谱法和气相色谱法测定水质中碘化物对比研究[J]. 水资源开发与管理, 2019(9): 16-20.

    Google Scholar

    Yang R F. Comparative study on determination of iodide in water quality by ion chromatography and gas chromatography[J]. Water Resources Development and Management, 2019(9): 16-20.

    Google Scholar

    [8] 朱红霞, 杨艳娥, 许秀艳. 气相色谱法测定水中碘化物前处理方法的比较[J]. 环境化学, 2015, 34(11): 2142-2145.

    Google Scholar

    Zhu H X, Yang Y E, Xu X Y. Comparison of pretreatment methods for determination of iodide in water by gas chromatography[J]. Environmental Chemistry, 2015, 34(11): 2142-2145.

    Google Scholar

    [9] 张钦龙, 高舸. 带八极杆碰撞/反应池的电感耦合等离子体质谱法测定尿中碘[J]. 中国卫生检验杂志, 2012, 22(9): 2023-2024, 2027.

    Google Scholar

    Zhang Q L, Gao G. Determination of iodine in urine by ORS-ICP-MS[J]. Chinese Journal of Health Laboratory Technology, 2012, 22(9): 2023-2024, 2027.

    Google Scholar

    [10] Wang M H, Huang Z P, Liu J W, et al. Iodide analysis by ion chromatography on a new stationary phase of polystyrene-divi-nylbenzene agglomerated with polymerized-epichlorohydrin-dimethylamine[J]. Chinese Chemical Letters, 2015, 26(8): 1026-1030. doi: 10.1016/j.cclet.2015.05.002

    CrossRef Google Scholar

    [11] 杜韶娴, 李用倩, 刘胜玉. 电导检测离子色谱法同时测定饮用水中溴化物和碘化物[J]. 化学试剂, 2016, 38(3): 242-244.

    Google Scholar

    Du S X, Li Y Q, Liu S Y. Simultaneous determination of bromide and iodide in drinking water by ion chromatography with conductivity detection[J]. Chemical Reagents, 2016, 38(3): 242-244.

    Google Scholar

    [12] 寇志华, 刘克克, 任增辉. 离子色谱法测定生活饮用水中碘化物[J]. 河南预防医学杂志, 2020, 31(4): 264-265.

    Google Scholar

    Kou Z H, Liu K K, Ren Z H. Determination of iodide in drinking water by ion chromatography[J]. Henan Journal of Preventive Medicine, 2020, 31(4): 264-265.

    Google Scholar

    [13] 张艳, 田耕, 毕军平, 等. 分光光度法测定水体中痕量碘化物[J]. 理化检验(化学分册), 2014, 50(9): 1171-1172.

    Google Scholar

    Zhang Y, Tian G, Bi J P, et al. Determination of trace iodide in water by spectrophotometry[J]. Physical Testing and Chemical Analysis (Part B: Chemical Analysis), 2014, 50(9): 1171-1172.

    Google Scholar

    [14] 张克梅, 袁明珠. 改良砷铈催化分光光度法测定水中碘[J]. 安徽预防医学杂志, 2019, 25(1): 29-32.

    Google Scholar

    Zhang K M, Yuan M Z. Determination of iodine in water by improved arsenic-cerium catalytic spectrophotometry[J]. Anhui Journal of Preventive Medicine, 2019, 25(1): 29-32.

    Google Scholar

    [15] 胥彦琪. 基于HRP催化诱导金纳米棒形貌改变的碘离子检测研究[J]. 化学研究与应用, 2018, 30(1): 133-136.

    Google Scholar

    Xu Y Q. Detection of iodide ion based on HRP catalyzed morphology change of gold nanorods[J]. Chemical Research and Application, 2018, 30(1): 133-136.

    Google Scholar

    [16] 姜翠凤, 李卓健, 莫贵和, 等. 基于聚乙烯亚胺-金纳米粒子聚集的碘离子检测[J]. 分析试验室, 2020, 39(6): 654-657.

    Google Scholar

    Jiang C F, Li Z J, Mo G H, et al. Detection of iodide ion based on polyethylene imine gold nanoparticles aggregation[J]. Chinese Journal of Analysis Laboratory, 2020, 39(6): 654-657.

    Google Scholar

    [17] 张建伟. 离子色谱-安培检测法检测饮用水中碘化物[J]. 城镇供水, 2021(2): 66-68.

    Google Scholar

    Zhang J W. Determination of iodide in drinking water by ion chromatography-amperometric detection[J]. City and Town Water Supply, 2021(2): 66-68.

    Google Scholar

    [18] 郭晶晶, 林冬, 李旭冉. 积分安培检测-离子色谱法测定水中痕量碘离子[J]. 广州化工, 2016, 44(16): 128-130, 169.

    Google Scholar

    Guo J J, Lin D, Li X R. Determination of trace iodide ion in water by integral Ampere detection-ion chromatography[J]. Guangzhou Chemical Industry, 2016, 44(16): 128-130, 169.

    Google Scholar

    [19] 杨晟, 张巧, 谢帮蜜, 等. 华南某市地表水碘分布特征及其成因浅析[J]. 安全与环境学报, 2019, 19(4): 1468-1472.

    Google Scholar

    Yang S, Zhang Q, Xie B M, et al. Distribution characteristics and genesis of iodine in surface water of a city in South China[J]. Journal of Safety and Environment, 2019, 19(4): 1468-1472.

    Google Scholar

    [20] 蒋园园, 程海, 徐蕾. 电导和直流安培双检测器离子色谱法测定清洁水样中的碘化物[J]. 环境监测与预警, 2020, 12(2): 31-35.

    Google Scholar

    Jiang Y Y, Cheng H, Xu L. Determination of iodide in clean water by conductivity and DC amperometric double detector ion chromatography[J]. Environmental Monitoring and Forewarning, 2020, 12(2): 31-35.

    Google Scholar

    [21] 王新旺. 离子色谱-安培检测器法测定尿中碘含量[J]. 河南预防医学杂志, 2016, 27(7): 518-520.

    Google Scholar

    Wang X W. Determination of iodine in urine by ion chromatography-amperometric detector[J]. Henan Journal of Preventive Medicine, 2016, 27(7): 518-520.

    Google Scholar

    [22] 宋冰冰, 田耘, 李仁勇, 等. 碳酸盐体系离子色谱法快速测定水体中碘化物[J]. 环境监测管理与技术, 2017, 29(4): 50-52, 56.

    Google Scholar

    Song B B, Tian Y, Li R Y, et al. Rapid determination of iodide in water by ion chromatography with carbonate system[J]. The Administration and Technique of Environmental Monitoring, 2017, 29(4): 50-52, 56.

    Google Scholar

    [23] 袁湘, 范旭, 冯丽娟, 等. 离子色谱法检测芦荟胶化妆品中无机阴离子[J]. 应用化工, 2022, 51(5): 1520-1522, 1526.

    Google Scholar

    Yuan X, Fan X, Feng L J, et al. Determination of inorganic anions in aloe gel cosmetics by ion chromatography[J]. Applied Chemical Industry, 2022, 51(5): 1520-1522, 1526.

    Google Scholar

    [24] 吴家钰, 王勇, 李泳宜, 等. 基于离子转换色谱的紫外检测系统测定饮料中的无机阳离子含量[J]. 离子交换与吸附, 2021, 37(1): 88-96.

    Google Scholar

    Wu J Y, Wang Y, Li Y Y, et al. Determination of inorganic cation content in beverage by UV detection system based on ion conversion chromatography[J]. Ion Exchange and Adsorption, 2021, 37(1): 88-96.

    Google Scholar

    [25] 佘小林. 离子色谱法快速测定土壤中碘量[J]. 岩矿测试, 2005, 24(2): 145-147.

    Google Scholar

    She X L. Rapid determination of iodine content in soil by ion chromatography[J]. Rock and Mineral Analysis, 2005, 24(2): 145-147.

    Google Scholar

    [26] 宋冰冰, 田耘, 罗岳平, 等. 离子色谱法测定多种水体中碘化物应用研究[J]. 环境科学与管理, 2015, 40(10): 124-126.

    Google Scholar

    Song B B, Tian Y, Luo Y P, et al. Determination of iodide in various water bodies by ion chromatography[J]. Environmental Science and Management, 2015, 40(10): 124-126.

    Google Scholar

    [27] Xia N, Ji H Z. Simultaneous determination of iodide, sulphate, fluoride and nitrite in salt samples by ion chromatography[J]. Asian Journal of Chemistry, 2014, 26(22): 7869-7870.

    Google Scholar

    [28] 薛智凤, 胡智杰, 王亚娇, 等. 离子色谱法测定水中无机阴离子检测条件的优化与探索[J]. 分析仪器, 2020(6): 133-136.

    Google Scholar

    Xue Z F, Hu Z J, Wang Y J, et al. Optimization and exploration of determination conditions of inorganic anions in water by ion chromatography[J]. Analytical Instrumentation, 2020(6): 133-136.

    Google Scholar

    [29] 贾丽, 刘肖. 全新离子色谱柱-抑制型电导法检测饮用水中痕量溴酸盐[J]. 环境化学, 2006, 25(6): 793-795.

    Google Scholar

    Jia L, Liu X. Determination of trace bromate in drinking water by a novel ion chromatography column-suppressed conductivity method[J]. Environmental Chemistry, 2006, 25(6): 793-795.

    Google Scholar

    [30] Rong L, Lim L W, Takeuchi T. Rapid determination of iodide in seawater samples by ion chromatography with chemically-bonded vitamin-U stationary phase[J]. Microchemical Journal, 2013, 108: 113-116.

    Google Scholar

    [31] 佘小林, 胡兰, 刘军, 等. 离子色谱法测定牛皮纸样袋中海底沉积物的氯量[J]. 岩矿测试, 2009, 28(4): 373-375.

    Google Scholar

    She X L, Hu L, Liu J, et al. Determination of chlorine content in seabed sediments in kraft paper sample bags by ion chromatography[J]. Rock and Mineral Analysis, 2009, 28(4): 373-375.

    Google Scholar

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