He Mao-Yong, Deng Li, Liu Jianni, Jin Zhang Dong, Ren Tongxiang
State Key Laboratory of Loess and Quaternary Geology, Institute of Earth Environment, Chinese Academy of Sciences Xi'an 710061 China
Qinghai Normal University, Academy of Plateau Science and Sustainability Xining 810016 China.
RSC Adv. 2023 Nov 1;13(46):32104-32109. doi: 10.1039/d3ra06727k. eCollection 2023 Oct 31.
The geochemistry of Li and Li isotopes is a promising tracer of chemical weathering processes for both modern and ancient times. Therefore, accurate and precise determination of the isotopic composition of Li is required for a large variety of complex geological samples with different Li concentrations and matrix/Li ratios. Especially, geochemical studies of precious geological samples with ultra-low lithium content and high matrix. In this study, the accuracy and the precision corresponding to Li isotopic measurements of low-level samples using multi-collector inductively coupled plasma mass spectrometry (MC-ICP-MS) with membrane desolvation introduction system was evaluated. The method of MC-ICP-MS with membrane desolvation and a high-sensitivity X-skimmer cone, together with a simple one-step column separation enabled the high-precision isotopic analysis of Li quantities as small as 2 ng. The long-term instrumental external reproducibility of δLi values for the L-SVEC and SPEX-Li were 0.0 ± 0.1‰ ( = 20) and 12.1 ± 0.4‰ ( = 20), respectively. Based on the measurements on a series of international reference materials over the last two years. The measured δLi values for the standards with a variety of matrices, including BHVO-2, AGV-2 and seawater (NASS-6). The δLi values of BHVO-2 (4.58 ± 0.35‰), AGV-2 (6.85 ± 0.40‰) and NASS-6 (30.88 ± 0.20‰) are in agreement with the published data within the uncertainty. We also present analytical results for South China Sea surface seawater water, meteorite, limestones and rain water. These results demonstrate the validity of the method for obtaining highly precise and accurate outcomes.
锂及其同位素的地球化学是研究现代和古代化学风化过程的一种很有前景的示踪剂。因此,对于各种锂浓度和基质/锂比率不同的复杂地质样品,需要准确、精确地测定锂的同位素组成。特别是对于锂含量超低且基质高的珍贵地质样品的地球化学研究。在本研究中,评估了使用带有膜去溶剂化进样系统的多接收电感耦合等离子体质谱仪(MC-ICP-MS)对低含量样品进行锂同位素测量的准确性和精密度。带有膜去溶剂化和高灵敏度X-截取锥的MC-ICP-MS方法,以及简单的一步柱分离法能够对低至2 ng的锂量进行高精度同位素分析。L-SVEC和SPEX-Li的δLi值的长期仪器外部重现性分别为0.0±0.1‰(n = 20)和12.1±0.4‰(n = 20)。基于过去两年对一系列国际参考物质的测量。对包括BHVO-2、AGV-2和海水(NASS-6)在内的各种基质标准物质测量的δLi值。BHVO-2(4.58±0.35‰)、AGV-2(6.85±0.40‰)和NASS-6(30.88±0.20‰)的δLi值在不确定度范围内与已发表数据一致。我们还给出了南海表层海水、陨石、石灰岩和雨水的分析结果。这些结果证明了该方法获得高精度和准确结果的有效性。