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Synergy of elastic and inelastic energy loss on ion track formation in SrTiO3

机译:弹性和非弹性能量损失对SrTiO3离子轨迹形成的协同作用

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摘要

While the interaction of energetic ions with solids is well known to result in inelastic energy loss to electrons and elastic energy loss to atomic nuclei in the solid, the coupled effects of these energy losses on defect production, nanostructure evolution and phase transformations in ionic and covalently bonded materials are complex and not well understood due to dependencies on electron-electron scattering processes, electron-phonon coupling, localized electronic excitations, diffusivity of charged defects, and solid-state radiolysis. Here we show that a colossal synergy occurs between inelastic energy loss and pre-existing atomic defects created by elastic energy loss in single crystal strontium titanate (SrTiO3), resulting in the formation of nanometer-sized amorphous tracks, but only in the narrow region with pre-existing defects. These defects locally decrease the electronic and atomic thermal conductivities and increase electron-phonon coupling, which locally increase the intensity of the thermal spike for each ion. This work identifies a major gap in understanding on the role of defects in electronic energy dissipation and electron-phonon coupling; it also provides insights for creating novel interfaces and nanostructures to functionalize thin film structures, including tunable electronic, ionic, magnetic and optical properties.
机译:虽然众所周知,高能离子与固体之间的相互作用会导致固体中电子失去弹性能量,而原子核中失去弹性能量,但是这些能量损失对缺陷产生,离子和共价键的纳米结构演化和相变的耦合作用由于对电子-电子散射过程,电子-声子耦合,局部电子激发,带电缺陷的扩散性以及固态辐射分解的依赖性,键合材料非常复杂且尚未得到很好的理解。在这里,我们表明,在单晶钛酸锶(SrTiO3)中,非弹性能量损失与弹性能量损失产生的预先存在的原子缺陷之间会产生巨大的协同作用,从而形成纳米级的非晶轨道,但仅在具有预先存在的缺陷。这些缺陷会局部降低电子和原子的热导率,并增加电子-声子耦合,从而局部增加每个离子的热尖峰强度。这项工作确定了在理解缺陷在电子能量耗散和电子-声子耦合中的作用方面的主要差距;它还为创建新颖的界面和纳米结构以使薄膜结构功能化(包括可调的电子,离子,磁性和光学特性)提供了见识。

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