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纳米氧化铝填充微柱固相萃取结合场放大样品堆积-毛细管电泳用于环境水样中无机硒的形态分析。

Nanometer-sized alumina packed microcolumn solid-phase extraction combined with field-amplified sample stacking-capillary electrophoresis for the speciation analysis of inorganic selenium in environmental water samples.

机构信息

Key Laboratory of Analytical Chemistry for Biology and Medicine-Ministry of Education, Department of Chemistry, Wuhan University, Wuhan, P. R. China.

出版信息

Electrophoresis. 2012 Oct;33(19-20):2953-60. doi: 10.1002/elps.201200156. Epub 2012 Sep 20.

Abstract

In this paper, a new method of nanometer-sized alumina packed microcolumn SPE combined with field-amplified sample stacking (FASS)-CE-UV detection was developed for the speciation analysis of inorganic selenium in environmental water samples. Self-synthesized nanometer-sized alumina was packed in a microcolumn as the SPE adsorbent to retain Se(IV) and Se(VI) simultaneously at pH 6 and the retained inorganic selenium was eluted by concentrated ammonia. The eluent was used for FASS-CE-UV analysis after NH₃ evaporation. The factors affecting the preconcentration of both Se(IV) and Se(VI) by SPE and FASS were studied and the optimal CE separation conditions for Se(IV) and Se(VI) were obtained. Under the optimal conditions, the LODs of 57 ng L⁻¹ (Se(IV)) and 71 ng L⁻¹ (Se(VI)) were obtained, respectively. The developed method was validated by the analysis of a certified reference material of GBW(E)080395 environmental water and the determined value was in a good agreement with the certified value. It was also successfully applied to the speciation analysis of inorganic selenium in environmental water samples, including Yangtze River water, spring water, and tap water.

摘要

本文提出了一种新的纳米氧化铝填充微柱固相萃取与场放大样品堆积(FASS)-CE-UV 检测相结合的方法,用于环境水样中无机硒的形态分析。通过自合成纳米氧化铝作为 SPE 吸附剂,在 pH 6 时同时保留 Se(IV)和 Se(VI),并用浓氨水洗脱保留的无机硒。氨蒸发后,将洗脱液用于 FASS-CE-UV 分析。研究了 SPE 和 FASS 对 Se(IV)和 Se(VI)预浓缩的影响因素,并得到了 Se(IV)和 Se(VI)的最佳 CE 分离条件。在最佳条件下,分别得到 57 ng L⁻¹(Se(IV))和 71 ng L⁻¹(Se(VI))的检出限。通过对国家标准物质 GBW(E)080395 环境水样的分析,对所建立的方法进行了验证,测定值与证书值吻合良好。该方法还成功应用于环境水样中无机硒的形态分析,包括长江水、泉水和自来水。

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