Yang Junqing, Zheng Mei, Liu Qiuju, Yang Meiling Zhu Chushan, Zhang Yan, Zhu Zhiqiang
Information Engineering Faculty, Jiangxi Modern Polytechnic College, Nanchang 330095, China.
School of Chemistry and Environmental Science, Shangrao Normal University, Jiangxi 334001, China.
Int J Environ Res Public Health. 2017 Sep 26;14(10):1129. doi: 10.3390/ijerph14101129.
Microwave plasma torches (MPTs) can be used as simple and low power-consumption ambient ion sources. When MPT-mass spectrometry (MPT-MS) is applied in the detection of some metal elements, the metallic ions exhibit some novel features which are significantly different with those obtained by the traditional inductively coupled plasma (ICP)-mass spectrometry (ICP-MS) and may be helpful for metal element analysis. As the representative elements of group IVA, titanium and zirconium are both of importance and value in modern industry, and they have impacts on human health. Here, we first provide a study on the complex anions of titanium and zirconium in water by using the MPT as ion source and a linear ion trap mass spectrometer (LTQ-MS). These complex anions were produced in the plasma flame by an aqueous solution flowing through the central tube of the MPT, and were introduced into the inlet of the mass spectrometry working in negative ion mode to get the feature mass spectrometric signals. Moreover, the feature fragment patterns of these ions in multi-step collision- induced dissociation processes have been explained. Under the optimized conditions, the limit of detection (LOD) using the MS² (the second tandem mass spectrometry) procedure was estimated to be at the level of 10μg/L for titanium and 20 μg/L for zirconium with linear dynamics ranges that cover at least two orders of magnitude, i.e., between 0-500 μg/L and 20-200 μg/L, respectively. These experimental data demonstrated that the MPT-MS is a promising and useful tool in field analysis of titanium and zirconium ions in water, and can be applied in many fields, such as environmental control, hydrogeology, and water quality inspection. In addition, MPT-MS could also be used as a supplement of ICP-MS for the rapid and on-site analysis of metal ions.
微波等离子体炬(MPT)可用作简单且低功耗的常压离子源。当MPT-质谱联用仪(MPT-MS)用于某些金属元素的检测时,金属离子呈现出一些新颖的特征,这些特征与传统电感耦合等离子体质谱仪(ICP-MS)所获得的特征显著不同,可能有助于金属元素分析。作为IVA族的代表性元素,钛和锆在现代工业中都具有重要意义和价值,并且它们对人体健康有影响。在此,我们首次利用MPT作为离子源和线性离子阱质谱仪(LTQ-MS),对水中钛和锆的络合阴离子进行了研究。这些络合阴离子是通过水溶液流经MPT的中心管在等离子体火焰中产生的,并被引入以负离子模式工作的质谱仪进样口,从而获得特征质谱信号。此外,还解释了这些离子在多步碰撞诱导解离过程中的特征碎片模式。在优化条件下,使用二级串联质谱(MS²)程序时,钛的检测限(LOD)估计为10μg/L,锆的检测限为20μg/L,线性动态范围至少覆盖两个数量级,即分别在0 - 500μg/L和20 - 200μg/L之间。这些实验数据表明,MPT-MS是用于水中钛和锆离子现场分析的一种有前景且有用的工具,可应用于许多领域,如环境监测、水文地质和水质检测。此外,MPT-MS还可作为ICP-MS的补充,用于金属离子的快速现场分析。