首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Numerical simulations for quantitative analysis of electrostatic interaction between atomic force microscopy probe and an embedded electrode within a thin dielectric: meshing optimization, sensitivity to potential distribution and impact of cantilever contribution
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Numerical simulations for quantitative analysis of electrostatic interaction between atomic force microscopy probe and an embedded electrode within a thin dielectric: meshing optimization, sensitivity to potential distribution and impact of cantilever contribution

机译:薄电介质中静电相互作用的定量分析数值模拟:薄电介质内的嵌入电极:啮合优化,敏感性与悬臂贡献的潜在分布及影响

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摘要

Recent experimental results demonstrated that an electrostatic force distance curve (EFDC) can be used for space charge probing in thin dielectric layers. A main advantage of the method is claimed to be its sensitivity to charge localization, which, however, needs to be substantiated by numerical simulations. In this paper, we have developed a model which permits us to compute an EFDC accurately by using the most sophisticated and accurate geometry for the atomic force microscopy probe. To avoid simplifications and in order to reproduce experimental conditions, the EFDC has been simulated for a system constituted of a polarized electrode embedded in a thin dielectric layer (SiNx). The individual contributions of forces on the tip and on the cantilever have been analyzed separately to account for possible artefacts. The EFDC sensitivity to potential distribution is studied through the change in electrode shape, namely the width and the depth. Finally, the numerical results have been compared with experimental data.
机译:最近的实验结果表明,静电力距离曲线(EFDC)可用于薄介电层中的空间电荷探测。该方法的主要优点要求是其对充电定位的敏感性,然而,需要通过数值模拟来证实。在本文中,我们开发了一种模型,允许我们通过使用原子力显微镜探针的最复杂和准确的几何形状来准确地计算EFDC。为了避免简化并为了再现实验条件,已经模拟了EFDC的用于嵌入薄介电层(SINX)的偏振电极构成的系统。分别分析了尖端和悬臂上的部队对悬臂上的个人贡献,以考虑可能的人工制品。通过电极形状的变化,即宽度和深度来研究对电位分布的EFDC敏感性。最后,将数值结果与实验数据进行了比较。

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