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Method to Quantify Nanoscale Surface Charge in Liquid with Atomic Force Microscopy

机译:用原子力显微镜量量化纳米级表面电荷的方法

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摘要

A theory is presented to obtain surface charge density on nanoscale objects from data in the snap-to-contact portion of an atomic force microscope force-separation curve. The mathematical model takes into account the tip's dielectric constant using the Self-Consistent Sum of Dipoles theory which includes the charge-charge interaction and the charge-dipole interaction with electrolyte-induced exponentially decaying screening, Debye and London dipolar force, and fluid viscosity including confined fluid layers to account for energy dissipation. Using previously published experimental data, the mathematical model is applied to measure the surface charge density on an individual nanoscale amine-modified polystyrene bead immobilized on the basal plane of highly oriented pyrolytic graphite in buffered aqueous solution. Within the experimental uncertainty, the magnitude of the charge density on a single bead obtained using the new method falls within the distribution of values determined by the manufacturer using titration and electron microscopy.
机译:提出了一种从原子力显微镜力分离曲线的卡波接触部分中的数据获得纳米级目物的表面电荷密度。数学模型使用包括电解电荷相互作用和电解质诱导的电解质衰减筛选,德义和伦敦双极力的电解电荷相互作用和电荷 - 偶极相互作用以及流体粘度的倾角性的偶极子理论的介电常数限制流体层以解释能量耗散。使用先前公布的实验数据,应用数学模型来测量固定在缓冲水溶液中高温热解石墨的基底平面上的单个纳米级胺改性聚苯乙烯珠粒上的表面电荷密度。在实验不确定度下,使用新方法获得的单个珠子上的电荷密度的大小落在制造商使用滴定和电子显微镜的分布范围内。

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