Rua-Ibarz Ana, Bolea-Fernandez Eduardo, Vanhaecke Frank
Department of Analytical Chemistry, Ghent University, Krijgslaan 281-S12, 9000, Ghent, Belgium.
Anal Bioanal Chem. 2016 Jan;408(2):417-29. doi: 10.1007/s00216-015-9131-2. Epub 2015 Nov 9.
Mercury (Hg) isotopic analysis via multi-collector inductively coupled plasma (ICP)-mass spectrometry (MC-ICP-MS) can provide relevant biogeochemical information by revealing sources, pathways, and sinks of this highly toxic metal. In this work, the capabilities and limitations of two different sample introduction systems, based on pneumatic nebulization (PN) and cold vapor generation (CVG), respectively, were evaluated in the context of Hg isotopic analysis via MC-ICP-MS. The effect of (i) instrument settings and acquisition parameters, (ii) concentration of analyte element (Hg), and internal standard (Tl)-used for mass discrimination correction purposes-and (iii) different mass bias correction approaches on the accuracy and precision of Hg isotope ratio results was evaluated. The extent and stability of mass bias were assessed in a long-term study (18 months, n = 250), demonstrating a precision ≤0.006% relative standard deviation (RSD). CVG-MC-ICP-MS showed an approximately 20-fold enhancement in Hg signal intensity compared with PN-MC-ICP-MS. For CVG-MC-ICP-MS, the mass bias induced by instrumental mass discrimination was accurately corrected for by using either external correction in a sample-standard bracketing approach (SSB) or double correction, consisting of the use of Tl as internal standard in a revised version of the Russell law (Baxter approach), followed by SSB. Concomitant matrix elements did not affect CVG-ICP-MS results. Neither with PN, nor with CVG, any evidence for mass-independent discrimination effects in the instrument was observed within the experimental precision obtained. CVG-MC-ICP-MS was finally used for Hg isotopic analysis of reference materials (RMs) of relevant environmental origin. The isotopic composition of Hg in RMs of marine biological origin testified of mass-independent fractionation that affected the odd-numbered Hg isotopes. While older RMs were used for validation purposes, novel Hg isotopic data are provided for the latest generations of some biological RMs.
通过多接收电感耦合等离子体质谱仪(MC-ICP-MS)进行汞(Hg)同位素分析,能够通过揭示这种剧毒金属的来源、途径和汇,提供相关的生物地球化学信息。在这项工作中,分别基于气动雾化(PN)和冷蒸气发生(CVG)的两种不同样品引入系统的能力和局限性,在通过MC-ICP-MS进行汞同位素分析的背景下进行了评估。评估了(i)仪器设置和采集参数、(ii)分析物元素(Hg)的浓度以及用于质量歧视校正目的的内标(Tl),以及(iii)不同的质量偏差校正方法对汞同位素比值结果的准确性和精密度的影响。在一项长期研究(18个月,n = 250)中评估了质量偏差的程度和稳定性,结果表明相对标准偏差(RSD)≤0.006%。与PN-MC-ICP-MS相比,CVG-MC-ICP-MS的汞信号强度提高了约20倍。对于CVG-MC-ICP-MS,通过在样品-标准品括弧法(SSB)中使用外部校正或双重校正(包括在修订版的罗素定律(巴克斯特法)中使用Tl作为内标,随后进行SSB),可以准确校正仪器质量歧视引起的质量偏差。伴随的基体元素不会影响CVG-ICP-MS结果。在获得的实验精度范围内,无论是PN还是CVG,均未观察到仪器中存在质量无关歧视效应的任何证据。CVG-MC-ICP-MS最终用于对相关环境来源的标准物质(RMs)进行汞同位素分析。海洋生物来源的标准物质中汞的同位素组成证明了影响奇数汞同位素的质量无关分馏。虽然使用较旧的标准物质进行验证,但提供了一些最新一代生物标准物质的新汞同位素数据。