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Electrochemical Arsine Generators for Arsenic Determination

机译:电化学砷发生剂测定砷

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Arsine generation is the gateway for several sensitive and selective methods of As determination. An electrochemical arsine generator (EAG) is especially green: we report here the use of two electrode materials, aluminum and highly oriented (ordered) pyrolytic graphite (HOPG) never before used for this purpose. The first is operated on a novel constant voltage mode: current flows only when the sample, deliberately made highly conductive with acid, is injected. As a result, the cathode, despite being a highly active metal that will self-corrode in acid, lasts a long time. This EAG can be made to respond to As(III) and As(V) in an equivalent fashion and is fabricated with two readily available chromatographic T-fittings. It permits the use of a wire roll as the cathode, permitting rapid renewal of the electrode. The HOPG-based EAG is easily constructed from ion chromatography suppressor shells and can convert As(III) to AsH_3 quantitatively but has significantly lower response to As(V); this difference can be exploited for speciation. The success of Al, an active metal, also dispels the maxim that metals with high hydrogen overpotential are best for electrochemical hydride generation. We report construction, operation, and performance details of these EAGs. Using gas phase chemiluminescence (GPCL) with ozone as a complementary green analytical technique, we demonstrate attractive limits of detection (LODs) (S/N = 3) of 1.9 and 1.0 μg/L As(V) and As(III) for the HOPG-based EAG and 1.4 μg/L As(V) or As(III) for the Al-based EAG, respectively. Precision at the ~20 μg/L As(V) level was 2.4% and 2.1% relative standard deviation (RSD) for HOPG- and Al-based EAGs, respectively. Both HOPG- and Al-based EAGs permitted a sample throughput of 12/h. For groundwater samples from West Texas and West Bengal, India, very comparable results were obtained with parallel measurements by induction coupled plasma-mass spectrometry.
机译:砷化氢的生成是几种确定砷的敏感和选择性方法的途径。电化学a发生器(EAG)特别绿色:我们在此报告了两种电极材料的使用,铝和高度取向(有序)热解石墨(HOPG)从未用于此目的。第一种是在新颖的恒定电压模式下运行:只有当注入故意用酸制成的高导电性样品时,电流才会流过。结果,尽管阴极是高活性金属,但会在酸中自腐蚀,但阴极仍能维持较长时间。可以使该EAG以等效方式响应As(III)和As(V),并使用两个容易获得的色谱T型接头进行制造。它允许使用金属丝辊作为阴极,从而可以快速更新电极。基于HOPG的EAG易于用离子色谱抑制壳构建,可以定量地将As(III)转化为AsH_3,但对As(V)的响应却明显降低。这种差异可用于物种形成。 Al(一种活性金属)的成功也消除了以下观点:高氢超电势金属最适合生成电化学氢化物。我们报告了这些EAG的构造,操作和性能细节。使用气相化学发光(GPCL)和臭氧作为补充绿色分析技术,我们证明了1.9和1.0μg/ L As(V)和As(III)的有吸引力的检测限(S / N = 3)(S / N = 3)。基于HOPG的EAG和基于Al的EAG分别为1.4μg/ L As(V)或As(III)。对于HOPG和基于Al的EAG,在〜20μg/ L As(V)水平下的精密度分别为相对标准偏差(RSD)的2.4%和2.1%。基于HOPG和基于Al的EAG均允许12 / h的样品通量。对于来自印度西得克萨斯州和西孟加拉邦的地下水样品,通过感应耦合等离子体质谱法进行平行测量获得了非常可比的结果。

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