Abstract:During the detection of volatile organic compounds (VOCs), the VOCs residues in the reagent blank should be reduced as low as possible, otherwise the intercept of calibration curves would be influenced, resulting in poor accuracy of low concentration samples. The purge and trap-gas chromatography/mass spectrometry was used for the detection of 58 VOCs in water samples. The pollution sources of VOCs in reagent blank were compared and discussed. The effects of densification of low concentration standard points and forced through origin of the calibration curves on the results of the calibraition curves, low concentration spiked sample of reagent blank (the mass concentration of addition were in range of 0.20-1.00 μg/L) and tap water were discussed. The results showed that: (1) There were pollution of chloroform, benzene, toluene, ethylbenzene, m/p-xylene, o-xylene, 1,2,4-trimethylene and naphthalene in laboratory air and one commercial distilled water for drinking. Relatively speaking, the pollution of benzene, toluene and xylene from air was serious, while the pollution of chloroform, ethylbenzene, m/p-xylene, o-xylene and cumene from the commercial distilled water was serious. (2) When the calibration curves were densified with low concentration points and forced through origin, and coupled with high purity helium blow off pretreatment for the commercial drinking distilled water, the concentration of VOCs residue in pure water could be reduced, thus the determination values of VOCs in reagent blank sample were obviously lower than the limits of detection of the method (0.2-0.5 μg/L). When the optimized method was employed, the measured mass concentration of chloroform was 21.69 μg/L, and the mass concentrations of other VOCs were in range of 0.00-1.25 μg/L. The spiked recoveries (with standard addition of 2.00 μg/L) and relative standard deviations (RSD, n=4) ranged from 76.5% to 126.0% and from 1.1% to 16.6%, respectively. The optimized method was simple and suitable for application.
吴悦, 赖永忠, 陆国永, 薛俊发. 对水体中挥发性有机物分析的空白污染来源及解决措施的探讨[J]. 冶金分析, 2023, 43(2): 14-22.
WU Yue, LAI Yongzhong, LU Guoyong, XUE Junfa. Discussion on the sources and countermeasures of blank pollution in determination of volatile organic compounds in water samples. , 2023, 43(2): 14-22.
[1] 季海峰,王丽华,吴云,等.上海市金山区地表水中挥发性有机物检测结果分析[J].中国卫生检验杂志,2020,30(4):509-512. JI Haifeng,WANG Lihua,WU Yun,et al.Analysis of volatile organic compounds in surface water of Jinshan District,Shanghai[J].Chinese Journal of Health Laboratory Technology,2020,30(4):509-512. [2] 李丽君,王海娇,马健生.下辽河平原地下水中挥发性有机物的污染特征及健康风险评价[J].岩矿测试,2021,40(6):930-943. LI Lijun,WANG Haijiao,MA Jiansheng.Pollution characteristics and health risk assessment of volatile organic compounds in groundwater in the Lower Liaohe river plain[J].Rock and Mineral Analysis,2021,40(6):930-943. [3] 鲁栩春,刘本华,黄林显,等.化工厂及其下游地下水中挥发性有机物分布特征和健康风险评价[J].济南大学学报(自然科学版),2022,36(6):645-652. LU Xuchun,LIU Benhua,HUANG Linxian,et al.Distribution characteristics and health risk assessment of volatile organic compounds in groundwater of chemical plant and its downstream[J].Journal of University of Jinan(Science and Technology),2022,36(6):645-652. [4] 周志荣,王红伟,张淼,等.北京市生活饮用水及家用净水设备出水中挥发性有机物的水平调查[J].环境与健康杂志,2017,34(5):420-422. ZHOU Zhirong,WANG Hongwei,ZHANG Miao,et al.Investigation of volatile organic compounds in tap water and purified water produced by water treatment units in Beijing[J].Journal of Environment and Health,2017,34(5):420-422. [5] 张慧君,陶功华,洪新宇,等.上海市主城区生活饮用水中非挥发性有机物的潜在致突变性分析[J].环境与职业医学,2021,38(6):612-617. ZHANG Huijun,TAO Gonghua,HONG Xinyu,et al.Potential mutagenicity of nonvolatile organic compounds in drinking water in main urban area of Shanghai[J].Journal of Environmental & Occupational Medicine,2021,38(6):612-617. [6] 陈芳,徐建芬,曹芸燕,等.钱塘江流域污水处理厂出水中挥发性有机物健康风险评估[J].科技通报,2019,35(9):184-189. CHEN Fang,XU Jianfen,CAO Yunyan,et al.Health risk assessment of volatile organic pollutants in sewage treatment plant[J].Bulletin of Science and Technology,2019,35(9):184-189. [7] 左海英,张琳,刘菲,等.水中挥发性有机物分析的影响因素和常见问题解决办法[J].岩矿测试,2013,32(1):124-127. ZUO Haiying,ZHANG Lin,LIU Fei,et al.Main influencing factors and solutions in the analysis of volatile organic compounds in water[J].Rock and Mineral Analysis,2013,32(1):124-127. [8] 环境保护部科技标准司.HJ 810—2016 水质 挥发性有机物的测定 顶空/气相色谱-质谱法[S].北京:中国环境科学出版社,2016. [9] 环境保护部科技标准司.HJ 639—2012水质 挥发性有机物的测定 吹扫捕集/气相色谱-质谱法[S].北京:中国环境科学出版社,2012. [10] 范洁,樊灏,沈振兴,等.西安市新装修公共场所空气污染物浓度分析及健康风险评价[J].环境科学,2021,42(5):2153-2158. FAN Jie,FAN Hao,SHEN Zhenxing,et al.Concentration analysis and health risk assessment of air pollutants in newly decorated public places in Xi′an[J].Environmental Science,2021,42(5):2153-2158. [11] 吴悦,赖永忠,张彤,等.不同消毒工艺对韩江滤后水消毒效果的影响[J].中国给水排水,2020,36(11):39-45. WU Yue,LAI Yongzhong,ZHANG Tong,et al.Disinfection efficiency of filtered water from hanjiang river by different disinfection processes[J].China Water & Wastewater,2020,36(11):39-45. [12] 梁鹏山,赖永忠,俞卫峰.气相色谱/质谱法分析挥发性有机物的内标物优化选择[J].中国给水排水,2016,32(4):98-104. LIANG Pengshan,LAI Yongzhong,YU Weifeng.Optimized selection of internal standards in determination of volatile organic compounds in wastewater with dynamic headspace gas chromatography/mass spectrometry[J].China Water & Wastewater,2016,32(4):98-104. [13] 赖永忠.DB-5MS石英毛细管色谱柱用于常见挥发性有机物检测[J].分析仪器,2018,49(3):171-181. LAI Yongzhong.Simultaneous determination of volatile organic compounds with DB-5MS quartz capillary column[J].Analytical Instrumentation,2018,49(3):171-181. [14] 赖永忠,黄意敏.顶空-气相色谱/质谱法检测水质中56种挥发性有机物的方法检出限筛选方法探讨[J].化学试剂,2020,42(8):948-953. LAI Yongzhong,HUANG Yimin.Screening method for method detection limits of 56 volatile organic compounds in enviromental water by head-space-gas chromatography/mass spectrometry[J].Chemical Reagen-ts,2020,42(8):948-953.