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Deformation-induced trace element redistribution in zircon revealed using atom probe tomography

机译:原子探针层析成像揭示锆石中变形诱导的微量元素重新分布

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Trace elements diffuse negligible distances through the pristine crystal lattice in minerals: this is a fundamental assumption when using them to decipher geological processes. For example, the reliable use of the mineral zircon (ZrSiO4) as a U-Th-Pb geochronometer and trace element monitor requires minimal radiogenic isotope and trace element mobility. Here, using atom probe tomography, we document the effects of crystal–plastic deformation on atomic-scale elemental distributions in zircon revealing sub-micrometre-scale mechanisms of trace element mobility. Dislocations that move through the lattice accumulate U and other trace elements. Pipe diffusion along dislocation arrays connected to a chemical or structural sink results in continuous removal of selected elements (for example, Pb), even after deformation has ceased. However, in disconnected dislocations, trace elements remain locked. Our findings have important implications for the use of zircon as a geochronometer, and highlight the importance of deformation on trace element redistribution in minerals and engineering materials.
机译:微量元素在矿物中的原始晶格中散布的距离可忽略不计:这是使用它们解密地质过程时的基本假设。例如,将矿物锆石(ZrSiO 4 )可靠地用作U-Th-Pb天文钟和微量元素监测器,需要最小的放射性同位素和微量元素迁移率。在这里,我们使用原子探针层析成像技术,记录了晶体塑性变形对锆石中原子级元素分布的影响,揭示了微量元素迁移的亚微米级机理。穿过晶格的位错会累积U和其他痕量元素。沿连接到化学或结构沉的位错阵列的管道扩散会导致连续移除选定的元素(例如,Pb),即使在变形停止之后也是如此。但是,在脱位错位中,跟踪元素保持锁定状态。我们的发现对将锆石用作天文钟具有重要意义,并强调了变形对矿物和工程材料中微量元素再分布的重要性。

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