论文标题
离子梁辐射引起的埃塞尔比转化:静液压和剪切应力的平均值和方差
Ion-Beam Radiation-Induced Eshelby Transformations: The Mean and Variance in Hydrostatic and Shear Residual Stresses
论文作者
论文摘要
离子光束在离子植入和制造纳米结构中起关键作用。但是,缺乏定量模型来描述与离子束辐射相关的残余应力。辐射诱导的残余应力/转化应变已在静液压子应变空间中被识别。在这里,我们使用分子动力学(MD)模拟表明材料对辐射的响应通常是各向异性的,它取决于离子梁方向,应使用张力量来描述。我们证明,基于加速器的离子束辐照以及内在的晶格各向异性和外部诱导的各向异性(例如各向异性机械载荷),还会导致辐射驱动的剪切转化菌株,除了进行静水膨胀。我们将这些复杂的相关性绘制为几种材料。辐射诱导的缺陷被证明是导致以Eshelby纳入转化方式残留的剪切应力。我们建议应考虑使用离子梁照射的精确纳米级制造这种张力响应模型。
Ion beam plays a pivotal role in ion implantations and the fabrication of nanostructures. However, there lacks a quantitative model to describe the residual stresses associated with the ion-beam radiation. Radiation-induced residual stress/transformation strain have been mostly recognized in the hydrostatic sub strain space. Here, we use molecular dynamics (MD) simulations to show that the response of a material to irradiation is generally anisotropic that depends on the ion-beam direction, and should be described using tensorial quantities. We demonstrate that accelerator-based ion beam irradiation, combined with the intrinsic lattice anisotropy and externally induced anisotropy (such as anisotropic mechanical loadings), causes radiation-actuated shear transformation strains in addition to hydrostatic expansion. We map out these complex correlations for several materials. Radiation-induced defects are shown to be responsible for residual shear stresses in the manner of Eshelby inclusion transformation. We propose such tensorial response model should be considered for accurate nanoscale fabrication using ion-beam irradiation.