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Effect of orientation on ion track formation in apatite and zircon

机译:取向对磷灰石和锆石中离子径迹形成的影响

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摘要

Fission track (FT) thermochornology is essentially based on empirical fits to annealing data of FTs revealed by chemical etching, because, until now, unetched, latent FTs could not be examined analytically at the atomic-scale. The major challenge to such an analysis has been the random orientation of FTs and their extremely small diameters. Here we use high-energy ions (2.2 GeV Au or 80 MeV Xe) to simulate FT formation along specific crystallographic orientations. By combining results from transmission electron microscopy (TEM) of single tracks and small-angle X-ray scattering (SAXS) for millions of tracks, a precise picture of track morphology as a function of orientation is obtained. High-resolution analysis reveals that orientation affects the shape of tracks in apatite and zircon through the preferential creation of damage along directions with highest atomic density. However, track radius does not depend on orientation, contradicting previous reports. Independent of track orientation, track radii, as measured at each point along the entire length of 80 MeV Xe ion tracks in apatite, can be understood using the thermal spike model of Szenes. Thus, the well-known track annealing anisotropy of apatite is not due to track radius anisotropy. The combination of ion-irradiations with TEM and SAXS analysis provides a unique opportunity to understand and model track formation and annealing under various geologic conditions.
机译:裂变径迹(FT)热变形学基本上基于对化学蚀刻揭示的FTs退火数据的经验拟合,因为到目前为止,未蚀刻的潜在FTs不能在原子尺度上进行分析检查。此类分析的主要挑战是FT的随机取向及其极小的直径。在这里,我们使用高能离子(2.2 GeV Au或80 MeV Xe)来模拟沿着特定晶体学取向的FT形成。通过结合单条轨道的透射电子显微镜(TEM)和数百万条轨道的小角度X射线散射(SAXS)的结果,可以获得轨道形态随方向变化的精确图像。高分辨率分析表明,取向会通过沿原子密度最高的方向优先产生破坏,从而影响磷灰石和锆石中轨道的形状。但是,轨道半径并不取决于方向,这与以前的报道相矛盾。可以使用Szenes的热尖峰模型来理解轨道半径,而该轨道半径是沿着磷灰石中80 MeV Xe离子轨道的整个长度在每个点处测量的,而不是轨道方向。因此,众所周知的磷灰石的轨道退火各向异性不是由于轨道半径各向异性引起的。离子辐射与TEM和SAXS分析的结合为了解和模拟各种地质条件下的轨道形成和退火提供了独特的机会。

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