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Shallow sampling by multi-shot laser ablation and its application within U-Pb zircon geochronology

机译:多射击激光消融浅采样及其在U-PB锆石地理学中的应用

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The interaction of incident laser radiation and sample substrate is complex and difficult to predict. Natural zircons are often both structurally and chemically heterogeneous in 3-dimensional space. Encountering growthrelated, structural micro-heterogeneities, inclusions and chemical complexities is almost inevitable during a static ablation of several tens of seconds. A multi-shot approach to laser ablation described here implements a minimal sample exposure time to incident laser radiation by applying multiple 1 Hz shots to a single sample location in delayed succession. This process can be conceptualised as a “slowing down” of a high-frequency (5–20 Hz) static laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) analysis until each laser pulse is distinct albeit transient. The ability to integrate and collate signal pulses for a small number of consecutive laser shots, as opposed to continuously pulsing the laser, produces precise age determinations (~1% reproducibility, 2σ level) on small sample volumes (704 ± 23 μm~3 on 91500 zircon standard). The multi-shot LA-ICP-MS protocol employed here significantly reduces the effect of ‘downhole’ fractionation as the resultant craters are extremely shallow (as shallow as 0.56 ± 0.02 μm on 91500 zircon standard) and maintain an aspect ratio of ?1. Further benefits include a reduced probability of thermally induced effects (e.g., substrate melting), plasma loading, and the potential for signal mixing (with depth) in a heterogeneous sample.
机译:入射激光辐射和样品衬底的相互作用复杂,难以预测。天然氧化锆通常在三维空间中结构和化学上异质。在静态消融几十秒的静态消融期间,遇到增长的增长,结构微异质,夹杂物和化学复杂性几乎是不可避免的。通过将多个1 Hz射击施加到延迟连续的单个样本位置,将描述的激光消融的多次样本曝光时间实现了最小的样本曝光时间。该过程可以被概念化为高频(5-20​​Hz)静态激光烧蚀电感耦合等离子体质谱(La-ICP-MS)分析直到每个激光脉冲都是迄今为止的暂态的“减慢”。与少量连续激光镜头相结合的能力和整理信号脉冲,而不是连续脉冲激光,在小样本量上产生精确的年龄测定(〜1%再现性,2σ水平)(704±23μm〜3 91500锆石标准)。这里采用的多滴LA-ICP-MS协议显着降低了“井下”分馏的效果,因为所得的陨石坑非常浅(在91500锆石标准的0.56±0.02μm浅)并保持纵横比的Δ1。进一步的益处包括降低的热诱导效应(例如,衬底熔化),等离子体载荷和异质样品中的信号混合(深度)的可能性的概率。

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