[Determination of trace perfluorinated compounds in environmental water samples by dispersive solid- phase extraction-high performance liquid chromatography-tandem mass spectrometry using carbon nanotube composite materials].

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Xin-Li Song, Ning Wang, Fei-Yan He, Can-Ling Cheng, Fei Wang, Jing-Long Wang, Li-Hua Zhang
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引用次数: 0

Abstract

In this work, carbon nanotubes (CNTs) on silica rod (SiO2) composite materials were prepared to extract six perfluorinated compounds (PFCs) in real environmental water samples by high performance liquid chromatography-tandem mass spectrometry (HPLC-MS/MS). The as-synthesized sorbents, hereafter referred to as CNT@SiO2, were employed for dispersive solid-phase extraction (d-SPE). Perfluoroheptanoic acid (PFHpA), perfluorohexane sulfonate (PFHxS), perfluorooctanoic acid (PFOA), perfluorononanoic acid (PFNA), perfluorooctane sulfonate (PFOS), and perfluorodecanoic acid (PFDA) were selected as target analytes. The main extraction parameters were systematically optimized using the single-factor optimization method. The optimum adsorption parameters were as follows: adsorption time of 30 min, sorbent amount of 10 mg, pH 6 and NaCl concentration of 1.7 mol/L for sample solution, and 4 mL acetone as desorption solvent, desorption for 4 min. LC-triple quadrupole MS was conducted to quantify the selected PFCs in water samples. The mobile phase was 5 mmol/L ammonium acetate and methanol, the flow rate was set to 0.4 mL/min, the column temperature was set to 40 ℃, and the injection volume was 5.0 μL. The chromatographic separation system was equipped with a Kinetex C18 column (100 mm×2.1 mm, 1.7 μm). The mass spectrometer was operated with negative electrospray ionization in multi-reaction monitoring mode. CNT@SiO2 was prepared in five batches and used as the d-SPE sorbent, and the relative standard deviations (RSDs) of the PFC recoveries among these five batches ranged from 4.9% to 9.3%. The reusability of the CNT@SiO2 sorbent was assessed. After eight d-SPE cycles using the same sorbent, the RSDs of the PFC recoveries were 3.7%-8.2%. These results indicated that the sorbent had good stability and reusability for d-SPE. Excellent results were achieved under optimal extraction conditions. The method validation results indicated that the linear ranges were 0.4-1000 ng/L for PFNA, PFOS, and PFDA, 0.9-1000 ng/L for PFHpA, 0.7-1000 ng/L for PFHxS, and 0.6-1000 ng/L for PFOA. The correlation coefficients were 0.973-0.997. The limit of detection (LOD) and limit of quantification of the method were 0.10-0.26 ng/L and 0.33-0.87 ng/L, respectively. At 20 ng/L, the RSDs of the intra- and inter-day precisions were 2.73%-7.75% and 3.38%-8.21%, respectively. At 100 ng/L, the RSDs of the intra- and inter-day precisions were 2.95%-8.46% and 4.16%-9.14%, respectively. Finally, at 500 ng/L, the RSDs of the intra- and inter-day precisions were 2.51%-7.48% and 3.59%-9.63%, respectively. The developed method was applied to analyze six PFCs in tap water, barreled drinking water, and river water samples. PFOA and PFOS were determined in tap water at mass concentrations of 5.6 and 8.7 ng/L, respectively. No PFCs were found in barreled drinking water and river water. Satisfactory recoveries of 72.1%-109.6% at low, middle, and high spiking levels were also obtained. In conclusion, the d-SPE-LC-MS/MS method based on CNT@SiO2 composite sorbents is accurate and sensitive. The results of this study demonstrate that CNT@SiO2 is a good choice for the rapid and effective determination of PFCs from water samples. Further exploration of the use of CNT@SiO2 sorbents for the extraction and determination of trace organic pollutions in environmental samples is in progress.

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[碳纳米管复合材料分散固相萃取-高效液相色谱-串联质谱法测定环境水样中痕量全氟化合物]。
本研究采用高效液相色谱-串联质谱(HPLC-MS/MS)技术,制备了硅棒(SiO2)复合材料上的碳纳米管(CNTs),用于提取真实环境水样中的6种全氟化合物(PFCs)。合成的吸附剂(以下简称CNT@SiO2)用于分散固相萃取(d-SPE)。选择全氟庚酸(PFHpA)、全氟己烷磺酸(PFHxS)、全氟辛酸(PFOA)、全氟壬酸(PFNA)、全氟辛烷磺酸(PFOS)和全氟癸酸(PFDA)作为目标分析物。采用单因素优化法对主要提取参数进行了系统优化。最佳吸附参数为:吸附时间为30 min,吸附剂用量为10 mg,样品溶液pH为6,NaCl浓度为1.7 mol/L,丙酮为4 mL,解吸时间为4 min。采用lc -三重四极杆质谱法对水样中选定的PFCs进行定量分析。流动相为5 mmol/L乙酸铵和甲醇,流速为0.4 mL/min,柱温为40℃,进样量为5.0 μL。色谱分离系统配备Kinetex C18色谱柱(100 mm×2.1 mm, 1.7 μm)。质谱仪采用负电喷雾电离,多反应监测模式。CNT@SiO2分5批制备,作为d-SPE吸附剂,5批PFC回收率的相对标准偏差(rsd)范围为4.9% ~ 9.3%。对CNT@SiO2吸附剂的可重复使用性进行了评价。使用相同的吸附剂进行8次d-SPE循环后,PFC的rsd为3.7% ~ 8.2%。结果表明,该吸附剂具有良好的稳定性和可重复使用性。在最佳提取条件下,提取效果良好。方法验证结果表明,PFNA、PFOS、PFDA在0.4 ~ 1000 ng/L、PFHpA在0.9 ~ 1000 ng/L、PFHxS在0.7 ~ 1000 ng/L、PFOA在0.6 ~ 1000 ng/L范围内呈线性关系。相关系数为0.973 ~ 0.997。方法的检出限为0.10 ~ 0.26 ng/L,定量限为0.33 ~ 0.87 ng/L。在20 ng/L条件下,日内精密度和日间精密度的rsd分别为2.73% ~ 7.75%和3.38% ~ 8.21%。在100 ng/L条件下,日内精密度rsd为2.95% ~ 8.46%,日内精密度rsd为4.16% ~ 9.14%。在500 ng/L条件下,日内精密度rsd为2.51% ~ 7.48%,日内精密度rsd为3.59% ~ 9.63%。应用该方法对自来水、桶装饮用水和河水样品中的6种全氟化合物进行了分析。自来水中PFOA和PFOS的质量浓度分别为5.6和8.7 ng/L。桶装饮用水和河水中未发现全氟化合物。在低、中、高加标水平上的加标回收率为72.1% ~ 109.6%。综上所述,基于CNT@SiO2复合吸附剂的d-SPE-LC-MS/MS方法准确、灵敏。本研究结果表明,CNT@SiO2是快速有效测定水样中PFCs的良好选择。目前正在进一步探索使用CNT@SiO2吸附剂提取和测定环境样品中的微量有机污染。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
色谱
色谱 CHEMISTRY, ANALYTICAL-
CiteScore
1.30
自引率
42.90%
发文量
7198
期刊介绍: "Chinese Journal of Chromatography" mainly reports the basic research results of chromatography, important application results of chromatography and its interdisciplinary subjects and their progress, including the application of new methods, new technologies, and new instruments in various fields, the research and development of chromatography instruments and components, instrument analysis teaching research, etc. It is suitable for researchers engaged in chromatography basic and application technology research in scientific research institutes, master and doctoral students in chromatography and related disciplines, grassroots researchers in the field of analysis and testing, and relevant personnel in chromatography instrument development and operation units. The journal has columns such as special planning, focus, perspective, research express, research paper, monograph and review, micro review, technology and application, and teaching research.
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