Shock deformation microstructures in xenotime from the Spider impact structure, Western Australia

M. A. Cox, A. Cavosie, M. Poelchau, T. Kenkmann, P. Bland, K. Miljković
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Abstract

The rare earth element–bearing phosphate xenotime (YPO4) is isostructural with zircon, and therefore it has been predicted that xenotime forms similar shock deformation microstructures. However, systematic characterization of the range of micro structures that form in xenotime has not been conducted previously. Here, we report a study of 25 xenotime grains from 10 shatter cones in silicified sandstone from the Spider impact structure in Western Australia. We used electron backscatter diffrac tion (EBSD) in order to characterize deformation and microstructures within xenotime. The studied grains preserve multiple sets of planar fractures, lamellar {112} deformation twins, high-angle planar deformation bands (PDBs), partially recrystallized domains, and pre-impact polycrystalline grains. Pressure estimates from micro structures in coexisting minerals (quartz and zircon) allow some broad empirical constraints on formation conditions of ~10–20 GPa to be placed on the observed microstructures in xenotime; at present, more precise formation conditions are unavailable due to the absence of experimental constraints. Results from this study indicate that the most promising microstructures in xenotime for recording shock deformation are lamellar {112} twins, polycrystalline grains, and high-angle PDBs. The {112} deformation twins in xenotime are likely to be a diagnostic shock indicator, but they may require a different stress regime than that of {112} twinning in zircon. Likewise, polycrystalline grains are suggestive of impact-induced thermal recrystallization; however, in contrast to zircon, the impact-generated polycrystalline xenotime grains here appear to have formed in the solid state, and, in some cases, they may be difficult to distinguish from diagenetic xenotime with broadly similar textures.
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西澳大利亚蜘蛛冲击构造在xenotime的冲击变形微观结构
含稀土磷矿xenotime (YPO4)与锆石具有相同的结构,因此预测xenotime具有类似的冲击变形微结构。然而,在xenotime中形成的微观结构范围的系统表征以前尚未进行过。在这里,我们报告了一项来自西澳大利亚蜘蛛撞击结构硅化砂岩中10个破碎锥的25个xenotime颗粒的研究。我们使用电子背散射衍射(EBSD)来表征在xenotime内的变形和微观结构。所研究的晶粒保留了多组平面断口、片层{112}变形孪晶、高角度平面变形带(PDBs)、部分再结晶区和预冲击多晶晶粒。共存矿物(石英和锆石)中微观结构的压力估计允许对xenotime观察到的微观结构施加~ 10-20 GPa的形成条件的广泛经验约束;目前,由于缺乏实验约束,无法获得更精确的地层条件。本研究结果表明,在xenotime中最有希望记录冲击变形的微观结构是片层{112}孪晶、多晶晶粒和高角度PDBs。xenotime中的{112}变形孪生可能是一个诊断性的冲击指标,但它们可能需要与锆石中的{112}孪生不同的应力状态。同样,多晶晶粒表明是由冲击引起的热再结晶;然而,与锆石相比,这里的撞击产生的多晶xenotime颗粒似乎是在固态下形成的,在某些情况下,它们可能很难与具有大致相似质地的成岩xenotime区分开来。
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