界面水和外加电位在Au(111)表面摩擦中的作用

IF 2 Q2 ENGINEERING, MECHANICAL
Leila Pashazanusi, K. Kristiansen, Shaowei Li, Yu Tian, N. Pesika
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引用次数: 5

摘要

在水环境中,AFM尖端与Au(111)表面之间的摩擦学性能受外加电位的影响。利用侧向力显微镜,我们测量了由此产生的摩擦力,同时通过三电极装置在金表面施加预定的电位。在Au表面施加正电位会在Au/电解质界面形成界面水层,从而急剧增加摩擦。然而,当施加阳极电位时,测量到的摩擦力较低。在超光滑的金表面和粗糙度较大的金表面上观察到电位依赖的摩擦。电解质离子强度的增加可以降低摩擦。研究发现,使用氢氧化钠水溶液可以降低摩擦急剧增加的临界电位。法向力曲线也被测量为接近速度的函数。法向力随接近速度的增加而线性增加,与排水模型一致。这些结果为应用电位对带电表面的水性质的影响提供了有价值的见解,并可能影响广泛的领域,包括摩擦学,微机电系统(MEMS),能量存储设备,燃料电池和催化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Interfacial Water and Applied Potential on Friction at Au(111) Surfaces
The tribological properties between an AFM tip and a Au(111) surface in an aqueous environment is influenced by an applied electrical potential. Using lateral force microscopy, we measure the resulting friction force, while simultaneously applying a predetermined electrical potential on the Au surface via a three-electrode setup. Applying a positive potential to the Au surface forms an interfacial water layer at the Au/electrolyte interface, which sharply increases friction. However, when an anodic potential is applied, lower friction forces are measured. The potential dependent friction is observed on ultra-smooth gold surfaces as well as Au surfaces with larger roughness. An increase in the ionic strength of the electrolyte is found to lower friction. The use of an aqueous NaOH solution is found to lower the critical potential at which the friction sharply increases. Normal force curves are also measured as a function of approach velocity. The normal force linearly increases as the approach velocity increases in agreement with a drainage model. These results provide valuable insight into the effect of applied electrical potentials on the properties of water at charged surfaces and can potentially impact a wide range of fields including tribology, micro-electro-mechanical systems (MEMS), energy storage devices, fuel cells and catalysis.
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来源期刊
Frontiers in Mechanical Engineering
Frontiers in Mechanical Engineering Engineering-Industrial and Manufacturing Engineering
CiteScore
4.40
自引率
0.00%
发文量
115
审稿时长
14 weeks
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