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Trends in mica–mica adhesion reflect the influence of molecular details on long-range dispersion forces underlying aggregation and coalignment

机译:云母-云母粘附的趋势反映了分子细节对长距离分散力的影响这些作用是聚集和共排列的基础

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摘要

Oriented attachment of nanocrystalline subunits is recognized as a common crystallization pathway that is closely related to formation of nanoparticle superlattices, mesocrystals, and other kinetically stabilized structures. Approaching particles have been observed to rotate to achieve coalignment while separated by nanometer-scale solvent layers. Little is known about the forces that drive coalignment, particularly in this “solvent-separated” regime. To obtain a mechanistic understanding of this process, we used atomic-force-microscopy-based dynamic force spectroscopy with tips fabricated from oriented mica to measure the adhesion forces between mica (001) surfaces in electrolyte solutions as a function of orientation, temperature, electrolyte type, and electrolyte concentration. The results reveal an ∼60° periodicity as well as a complex dependence on electrolyte concentration and temperature. A continuum model that considers the competition between electrostatic repulsion and van der Waals attraction, augmented by microscopic details that include surface separation, water structure, ion hydration, and charge regulation at the interface, qualitatively reproduces the observed trends and implies that dispersion forces are responsible for establishing coalignment in the solvent-separated state.
机译:纳米晶体亚基的定向附着被认为是一种常见的结晶途径,与纳米颗粒超晶格,介晶和其他动力学稳定的结构的形成密切相关。已经观察到接近的粒子在被纳米级溶剂层分开时旋转以实现共取向。关于驱动共对准的力知之甚少,尤其是在这种“溶剂分离”的状态下。为了获得对该过程的机械理解,我们使用了基于原子力显微镜的动态力光谱技术,该技术具有由定向云母制成的尖端,以测量电解质溶液中云母(001)表面之间的粘附力与取向,温度,电解质的关系。类型和电解质浓度。结果揭示了约60°的周期性以及对电解质浓度和温度的复杂依赖性。一个考虑静电排斥和范德华力吸引之间竞争的连续模型,并通过微观细节(包括表面分离,水结构,离子水合作用和界面处的电荷调节)增强,定性地再现了观察到的趋势并暗示了分散力是负责任的用于在溶剂分离状态下建立共取向。

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