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Numerical simulations for a quantitative analysis of AFM electrostatic nanopatterning on PMMA by Kelvin force microscopy

机译:用开尔文力显微镜对PMMA进行AFM静电纳米图案定量分析的数值模拟

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摘要

Electrostatic nanopatterning of electret thin films by atomic force microscopy (AFM) has emerged as an alternative efficient tool for the directed assembly of nano-objects on surfaces. High-resolution charge imaging of such charge patterns can be performed by AFM-based Kelvin force microscopy (KFM). Nevertheless, quantitative analysis of KFM surface potential mappings is not trivial because of side-capacitance effects induced by the tip cone and the cantilever of the scanning probe. In this paper, we developed numerical simulations of KFM measurements taking into account these artifacts, so as to estimate the actual surface charge density of square charge patterns (nominal sizes ranging from 100nm to 10 νm) written by AFM into polymethylmethacrylate (PMMA) thin films. This work revealed that, under our conditions, such charge patterns exhibit a surface charge density between 1.5 × 10~(- 3) and 3.8 × 10~(- 3)Cm~(- 2), depending on the assumed depth of injected charges. These results are crucial to quantify the actual electric field generated by such charge patterns and thus the electrostatic forces responsible for the directed assembly of nano-objects onto these electrostatic traps.
机译:通过原子力显微镜(AFM)对驻极体薄膜进行静电纳米构图已经成为将纳米物体定向组装在表面上的另一种有效工具。这种电荷模式的高分辨率电荷成像可以通过基于AFM的开尔文力显微镜(KFM)进行。然而,由于尖端锥和扫描探针的悬臂引起的侧电容效应,对KFM表面电势图进行定量分析并非易事。在本文中,我们考虑到这些伪像,开发了KFM测量的数值模拟,以便估算AFM写入聚甲基丙烯酸甲酯(PMMA)薄膜中的方形电荷图案(标称尺寸从100nm到10νm)的实际表面电荷密度。 。这项工作表明,在我们的条件下,根据假定注入电荷的深度,这种电荷模式的表面电荷密度在1.5×10〜(-3)和3.8×10〜(-3)Cm〜(-2)之间。 。这些结果对于量化由此类电荷模式产生的实际电场至关重要,因此对于量化将纳米物体定向组装到这些静电阱上的静电力至关重要。

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