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首页> 外文期刊>Analytical chemistry >Analysis of (Functionalized) Fullerenes in Water Samples by Liquid Chromatography Coupled to High-Resolution Mass Spectrometry
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Analysis of (Functionalized) Fullerenes in Water Samples by Liquid Chromatography Coupled to High-Resolution Mass Spectrometry

机译:液相色谱-高分辨率质谱法分析水样中(功能化)富勒烯

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One of the main challenges in environmental risk assessment of fullerenes is to develop analytical methods that detect and quantify fullerenes at low concentrations. In this paper we report on the development and optimization of a highly specific, robust, and relatively simple method for the quantitative determination of C_(60), C_(70), and six functionalized fullerenes, namely, [6,6]-phenyl-C_(61)-butyric acid methyl ester, [6,6]-phenyl-C_(61)-butyric acid butyl ester, [6,6]-phenyl-C_(61)-butyric acid octyl ester, [6,6]-bis(phenyl)-C_(61)-butyric acid methyl ester, [6,6]-thienyl-C_(61)-butyric acid methyl ester, and [6,6]-phenyl-C_(71)-butyric acid methyl ester ([70PCBM], in different aqueous matrixes. For this method fullerenes were extracted from the aqueous phase using solid-phase extraction (SPE), with subsequent analysis on a liquid chromatography-Orbitrap mass spectrometry (LC-Orbitrap MS) system. SPE was optimized by varying different conditions to improve recovery of all fullerenes. Different SPE column materials (C18, C18e, C8, CN) were tested, and recoveries appeared to be the highest for the C18-material. Recoveries were improved by adding NaCl to the water during extraction. Very low limit of detection (LOD) values were obtained for all compounds with this method, ranging from 0.17 ng/L for [70]PCBM to 0.28 ng/L for C_(60), and subsequent limit of quantitation (LOQ) values of 0.57-0.91 ng/L. Recoveries for the fullerenes were on average 120% in ultrapure and drinking water. Recoveries appeared to be lower, but still acceptable (e.g., >78%), in surface water. The developed approach is promising and will be applied, for example, in (1) environmental monitoring, (2) a more in-depth study of environmental fate and transformation products, and (3) studying water treatment efficiency of C_(60), C_(70), and the various functionalized fullerenes.
机译:富勒烯的环境风险评估中的主要挑战之一是开发分析方法,以检测和定量低浓度的富勒烯。在本文中,我们报告了开发和优化的一种高度特异性,鲁棒性和相对简单的方法,用于定量测定C_(60),C_(70)和六种官能化的富勒烯,即[6,6]-苯基-C_(61)-丁酸甲酯,[6,6]-苯基-C_(61)-丁酸丁酯,[6,6]-苯基-C_(61)-丁酸辛酯,[6, 6]-双(苯基)-C_(61)-丁酸甲酯,[6,6]-噻吩基-C_(61)-丁酸甲酯和[6,6]-苯基-C_(71)-丁酸甲酯([70PCBM],在不同的水基体中。对于该方法,使用固相萃取(SPE)从水相中提取富勒烯,然后在液相色谱-Orbitrap质谱仪(LC-Orbitrap MS)上进行分析通过改变不同的条件优化SPE,以提高所有富勒烯的回收率;对不同的SPE色谱柱材料(C18,C18e,C8,CN)进行了测试,回收率似乎是C18材料的最高,通过添加,回收率得到提高在萃取过程中将氯化钠加入水中。使用此方法获得的所有化合物的检测限(LOD)值非常低,范围从[70] PCBM的0.17 ng / L到C_(60)的0.28 ng / L,随后的定量(LOQ)值是0.57-0.91 ng / L。超纯水和饮用水中富勒烯的回收率平均为120%。地表水中的回收率似乎较低,但仍然可以接受(例如> 78%)。所开发的方法很有希望,并将应用于例如(1)环境监测,(2)对环境命运和转化产品的更深入研究以及(3)研究C_(60)的水处理效率, C_(70)和各种官能化的富勒烯。

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