离子存在时高岭石基底面纳米级水合景观的局部探测

IF 10 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Clodomiro Cafolla , Tai Bui , Tran Thi Bao Le , Andrea Zen , Weparn J. Tay , Alberto Striolo , Angelos Michaelides , Hugh Christopher Greenwell , Kislon Voïtchovsky
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引用次数: 0

摘要

水溶液与高岭石表面之间的界面在摩擦学、造纸、石油回收、废水处理和医疗设备等广泛的技术应用中发挥着重要作用。这得益于高岭石的层状结构,其两个基面--铝醇和硅氧烷--表现出不同的性质和反应性。我们结合使用高分辨率原子力显微镜(AFM)和原子分子动力学(MD)模拟,在水中和添加氯化钠的情况下对两个面的水合结构进行了原位探测。AFM 图像反映了刻面的第一水合层,模拟结果也证实了这一点。补充性原子力显微镜光谱测量结果表明,保守成分与 MD 的水密度曲线非常吻合,两个刻面上都有离散的水合层,而且对添加的离子几乎不敏感。测量到的针尖-样品相互作用的耗散成分对离子的存在更为敏感,而 MD 则表明这与局部水动力学和稳定水合层之间的瞬态不稳定性有关。这些影响取决于铝面,在铝面上更为明显,因为铝面的第一水层更为清晰。提高盐浓度可使水合离子形成更稳定的层,并显示出有组织的离子域。这些结果为了解高岭石面的平衡分子结构和动力学提供了独特的见解,有可能为涉及界面过程的应用提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Local probing of the nanoscale hydration landscape of kaolinite basal facets in the presence of ions

Local probing of the nanoscale hydration landscape of kaolinite basal facets in the presence of ions

Local probing of the nanoscale hydration landscape of kaolinite basal facets in the presence of ions

The interface between aqueous solutions and the facets of kaolinite plays an important role in a wide range of technological applications including tribology, paper production, oil recovery, waste water treatment and medical devices. This is made possible by kaolinite's layered structure, with its two basal surfaces -aluminol and siloxane-exhibiting different properties and reactivity. Using a combination of high-resolution atomic force microscopy (AFM) and atomistic molecular dynamics (MD) simulations, we probe in situ the hydration structure over both facets, in water and in the presence of added NaCl. The AFM images reflect the facets' first hydration layer, as confirmed from simulations. Complementary AFM spectroscopy measurements show an excellent agreement between the conservative component and MD's water density profiles, with discrete hydration layers on both facets and little sensitivity to added ions. The dissipative component of the measured tip-sample interactions is more sensitive to the presence of ions, with MD suggesting a link with the local water dynamics and transient instabilities between stable hydration layers. These effects are facet-dependant and more pronounced on the aluminol facet where the first water layer is better defined. Increasing the salt concentration allows hydrated ions to form more stable layers, with hints of organised ionic domains. The results provide unique insights into both the equilibrium molecular structure and dynamics of the kaolinite facets, potentially informing applications involving interfacial processes.

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来源期刊
Materials Today Physics
Materials Today Physics Materials Science-General Materials Science
CiteScore
14.00
自引率
7.80%
发文量
284
审稿时长
15 days
期刊介绍: Materials Today Physics is a multi-disciplinary journal focused on the physics of materials, encompassing both the physical properties and materials synthesis. Operating at the interface of physics and materials science, this journal covers one of the largest and most dynamic fields within physical science. The forefront research in materials physics is driving advancements in new materials, uncovering new physics, and fostering novel applications at an unprecedented pace.
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