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采用高分辨率电感耦合等离子体质谱法对铍-9 进行初步测量,可使铍同位素体系在地球科学中的应用更为精确。

Initial measurement of beryllium-9 using high-resolution inductively coupled plasma mass spectrometry allows for more precise applications of the beryllium isotope system within the Earth Sciences.

机构信息

Atmosphere and Ocean Research Institute, The University of Tokyo, 5-1-5 Kashiwanoha, Kashiwa, Chiba, 277-8564, Japan.

出版信息

Rapid Commun Mass Spectrom. 2021 Apr 30;35(8):e9059. doi: 10.1002/rcm.9059.

DOI:10.1002/rcm.9059
PMID:33502050
Abstract

RATIONALE

Precise and accurate determination of the ratio of the cosmogenic nuclide Be to the stable isotope Be ( Be/ Be) is needed across multiple fields of research within the Earth Sciences. Current techniques used to measure the Be content of geological materials generally require a large amount of sample or solution aliquot and present a large range of analytical precisions.

METHODS

A range of geological reference materials underwent whole-rock dissolution and "strong" (0.04 M NH OH.HCl in 25% acetic acid) and "weak" (0.02 M NH OH.HCl in 10% acetic acid) leaching to represent a range of potential applications within the geosciences. After treatment, the Be and major element (Na, Ca, Mg, Fe, Mn, Al and Ti) content of sample solutions were determined by high-resolution inductively coupled plasma mass spectrometry (HR-ICP-MS) using a Thermo® ELEMENT XR instrument.

RESULTS

The Be concentration of whole-rock and leaching solutions displayed a wide range of values within each geological reference material, generally following a uniform relationship implying a potential kinetic control on NH OH leaching, as suggested by major element profiles. A precision of 0.1 to 1.4% is achieved independent of sample size or leaching strength.

CONCLUSIONS

Initial results suggest that the use of HR-ICP-MS improves the precision of Be analysis for a range of geological reference materials. A high precision is maintained despite reducing the sample size or strength of leaching solution. This has implications for the use of the Be isotope system within the Earth Sciences by reducing the propagated uncertainty of Be/ Be ratios or the mass of sample or Be aliquot used.

摘要

原理

在地球科学的多个研究领域中,都需要精确和准确地确定宇宙成因核素 Be 与稳定同位素 Be( Be/ Be)的比值。目前用于测量地质材料中 Be 含量的技术通常需要大量的样品或溶液等分试样,并具有很大的分析精度范围。

方法

对一系列地质参考物质进行全岩溶解以及“强”(0.04 M NH OH.HCl 在 25%乙酸中)和“弱”(0.02 M NH OH.HCl 在 10%乙酸中)浸出,以代表地球科学内的一系列潜在应用。处理后,使用 Thermo®ELEMENT XR 仪器通过高分辨率电感耦合等离子体质谱法(HR-ICP-MS)测定样品溶液中的 Be 和主要元素(Na、Ca、Mg、Fe、Mn、Al 和 Ti)含量。

结果

每个地质参考物质的全岩和浸出溶液中的 Be 浓度均显示出广泛的数值范围,通常遵循统一的关系,暗示 NH OH 浸出存在潜在的动力学控制,如主要元素谱所示。独立于样品大小或浸出强度,精度达到 0.1%至 1.4%。

结论

初步结果表明,HR-ICP-MS 的使用提高了一系列地质参考物质中 Be 分析的精度。尽管减少了样品大小或浸出溶液的强度,但仍保持高精度。这对于在地球科学中使用 Be 同位素体系具有重要意义,因为它减少了 Be/ Be 比值或所用样品或 Be 等分试样的质量的传播不确定性。

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