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A FORWARD LOOK IN APPLICATIONS OF HIGH-SPATIAL RESOLUTIONLA-ICP-MS U-Th-Pb GEOCHRONOLOGY

机译:高空间分辨率应用中的前瞻性LA-ICP-MS U-Th-Pb地球年代学

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It is now easier than ever to begin dating materials using U-Th-Pb geochronology. A basicquadrupole ICP-MS and laser ablation system is all that are needed and with recent improvementsin efficiency of both instruments and analytical set-up, our ability to target lower U materials hasincreased significantly. As a result, younger zircons and lower U minerals such as apatite, rutileand carbonates are now possible to date with the U-Pb system. Sub-million year ages can now bedetermined and laser ablation ICPMS sensitivities even enable determination of U-series ages.This gives the potential to date materials in the 100 - 500 ka range by both U-Pb and U-series usingLA-ICP-MS, allowing cross-calibration of these different dating methods applied to more recentvolcanic activity.Improvements in transmission efficiency of the laser ablated material from the sample cell to themass spectrometer have had significant impact on the speed and throughput of data acquisition,allowing high speed elemental and isotopic mapping of materials to be a practical proposition. Theinsights these maps bring provide context to the interpretation of conventional static spot analyses,hugely increasing the strength of interpretation. This efficiency can be turned to the verticaldimension, increasing spatial resolution to the 10 - 100 nm scale whilst depth profiling mineralgrains. Analysis of petrographic thin sections, again providing important context for interpretation,is therefore easier with this increased control on depth resolution which also lends itself to diffusionstudies and within-grain U-Pb Discordia interpretation. This petrochronology, interpreting theelemental, isotopic and age information with petrographic context, usually using a ‘split-stream’two mass spectrometer arrangement, represents a significant growth area for the geochronologycommunity. This approach and ideology is then applied to a range of non-zircon minerals such asmonazite, titanite, apatite, xenotime and rutile, to enhance understanding of thermal histories(magmatism, metamorphism and cooling) related to tectonics and the understanding of uplift anderosion rates.The diversity of applications for laser ablation geochronology is increasing rapidly. The flexibilityof this analytical tool and improvements in data quality are encouraging targeting of more variedmineral types and greater numbers of samples. Volumes of data generated are vast and tools forhandling and visualising the data appropriately are required to ensure that data are validated andthat appropriate interpretations are made. This brings together geoscientists with data scientistsand mathematicians, broadening the skill base in U-Th-Pb geochronology and the requiredunderstanding and skills of the user. The future for LA-ICP-MS U-Th-Pb geochronology istherefore, bright, growing rapidly, with seemingly endless possibilities for application. Some ofthese future possibilities will be highlighted here along with the current applications that arepushing the boundaries of the methodology and enabling new scientific directions.
机译:现在,使用U-Th-Pb年代学开始对材料进行约会比以往任何时候都更加容易。基本的 仅需四极杆ICP-MS和激光烧蚀系统,并进行了最新改进 在仪器效率和分析设置方面,我们针对低铀材料的能力 显着增加。结果,年轻的锆石和较低的U矿物(如磷灰石,金红石) 迄今为止,U-Pb系统现在可以使用碳酸盐了。现在可以将亚百万岁的年龄定为 ICPMS的灵敏度和激光烧蚀灵敏度甚至可以确定U系列的年龄。 这样就可以使用U-Pb和U系列使用100-500 ka范围的材料 LA-ICP-MS,允许交叉校准适用于最新技术的这些不同的测年方法 火山活动。 激光烧蚀材料从样品池到样品池的传输效率得到改善 质谱仪对数据采集的速度和吞吐量产生了重大影响, 允许对材料进行高速元素和同位素作图成为现实的命题。这 这些地图带来的见解为传统的静态斑点分析的解释提供了背景, 极大地增强了解释的力量。这种效率可以转向垂直 尺寸,将空间分辨率提高到10-100 nm规模,同时对矿物进行深度剖析 谷物。岩石薄片的分析,再次提供了重要的解释背景, 因此,通过增加对深度分辨率的控制,可以使扩散变得更加容易 研究和晶粒内U-Pb Discordia解释。这种岩石年代学,解释了 具有岩石学背景的元素,同位素和年龄信息,通常使用“拆分流” 两个质谱仪的布置,代表了年代学的重要增长领域 社区。然后将这种方法和意识形态应用于一系列非锆石矿物,例如 独居石,钛铁矿,磷灰石,氙气和金红石,以增强对热历史的理解 (岩浆作用,变质作用和冷却作用)与构造学以及对隆升和隆起的理解有关 侵蚀率。 激光烧蚀地球年代学应用的多样性正在迅速增加。灵活性 分析工具的推出以及数据质量的提高,鼓励针对更多种类的目标 矿物类型和大量样品。生成的数据量巨大,并且用于 需要适当处理和可视化数据,以确保数据得到验证和 做出适当的解释。这使地球科学家和数据科学家聚集在一起 和数学家,拓宽了U-Th-Pb地球年代学的技能基础和所需 用户的理解和技能。 LA-ICP-MS U-Th-Pb地球年代学的未来是 因此,明亮,快速增长,似乎有无限的应用可能性。一些 这些未来的可能性以及当前的应用程序将在这里重点介绍。 拓宽方法论的界限并实现新的科学指导。

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