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Advances in microscale and nanoscale mechanisms of electrophoretic deposition in aqueous media

机译:微观介质和纳米级电泳沉积在水性介质中的进展

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The processing of ceramic thick and thin films, nano- and micro-scaled ceramic structures as well as bulk ceramics of high quality and precise dimensions under electrophoretic boundary conditions requires a full understanding of the dynamics of relevant interfacial mechanisms and interactions of colloidal phases at the nano- and micro-scale. Recent findings and latest insights on the importance of electrokinetic and electrohydrodynamic interfacial processes for membrane electrophoretic deposi-ton in aqueous media are summarised. In this context, the paper addresses the fundamental importance of surficial charge heterogeneities, electric double layer instabilities, electrokinetically induced micro-vortex dynamics, as well as lateral and medial effective electrical field gradients. These phenomena are evaluated in terms of reasonable correlations and mechanistic coincidences of general EPD deposition principles. The experimental results are based on potentiometry, in-situ videomicroscopy, high-resolution as well as secondary electron microscopy. A numerical method for the simulation of the electrophoretic deposition process is suggested based on a multiphysical Finite Element approach given by Nernst-Planck, Poisson- and Navier-Stokes equations. The results of the simulations provide adequate agreement with experimental findings.
机译:电泳边界条件下的陶瓷厚和薄膜,纳米和微缩放的陶瓷结构以及高质量和精确尺寸的大量陶瓷需要充分了解相关界面机制的动态和胶体阶段的相互作用纳米和微尺寸。总结了最近的发现和关于膜电泳Deposi-TON在水性介质中的电动和电性能界面过程的重要性的最新见解。在这种情况下,本文解决了表格电荷异质性,电双层稳定性,电动诱导的微型动力学以及横向和内侧有效电场梯度的基本重要性。这些现象是在合理的相关性和总体环保沉积原则的相关性和机械重合方面进行评估。实验结果基于电位测量,原位段镜,高分辨率以及二次电子显微镜。基于NERNST-PLANCK,Poisson - 和Navier-Stokes方程给出的多体性有限元方法,提出了一种模拟电泳沉积过程的数值方法。模拟结果与实验结果提供了足够的协议。

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