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Importance of Mass Transport and Spatially Heterogeneous Flux Processes for in Situ Atomic Force Microscopy Measurements of Crystal Growth and Dissolution Kinetics

机译:晶体生长和溶出动力学原位原子力显微镜测量的质量传递和空间异质通量方法的重要性

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摘要

It is well-established that important information about the dissolution and growth of crystals can be obtained by the investigation of step movement on single-crystal faces via in situ AFM. However, a potential drawback of this approach for kinetic measurements is that the small region of investigation may not be representative of the overall surface. It is shown that the investigation of local processes without accounting for the processes outside the region of interest can lead to significant misinterpretation of the data collected. Taking the case of gypsum dissolution as an example, we critically analyze literature data and develop 3 different finite element method models that treat in detail the coupled mass transport–surface kinetic problem pertaining to dissolution processes in a typical AFM environment. It is shown that mass transport cannot be neglected when performing in situ AFM on macroscopic surfaces even with high-convection fluid cells. Moreover, crystal dissolution kinetics determined by AFM is mainly influenced by processes occurring in areas of the surface outside the region of interest. When this is recognized, and appropriate models are applied, step velocities due to dissolution are consistent with expectations based on macroscopic measurements, and the kinetic gap that is often apparent between nanoscale and macroscopic measurements is closed. This study provides a framework for the detailed analysis of AFM kinetic data that has wide utility and applicability.udud
机译:公认的是,通过研究原位原子力显微镜在单晶面上的阶跃运动,可以获得有关晶体溶解和生长的重要信息。但是,这种方法用于动力学测量的潜在缺点是,调查的小区域可能无法代表整个表面。结果表明,对本地过程的调查如果不考虑感兴趣区域之外的过程,可能会导致对所收集数据的严重误解。以石膏溶解为例,我们对文献数据进行了批判性分析,并开发了3种不同的有限元方法模型,这些模型详细处理了与典型AFM环境中溶解过程有关的质量传递-表面动力学耦合问题。结果表明,即使在高对流流体池中,在宏观表面上进行原位原子力显微镜时,也不能忽略传质。而且,由AFM确定的晶体溶解动力学主要受到在感兴趣区域之外的表面区域中发生的过程的影响。认识到这一点并应用适当的模型后,由于溶解引起的阶跃速度与基于宏观测量的期望值一致,并且纳米级和宏观测量之间通常显而易见的动力学差距得以消除。这项研究提供了详细的AFM动力学数据分析框架,具有广泛的实用性和适用性。

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