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调频原子力显微镜揭示的疏水相互作用新信息。

New Information on the Hydrophobic Interaction Revealed by Frequency Modulation AFM.

机构信息

Department of Physics and the Russell Berrie Nanotechnology Institute, Technion - Israel Institute of Technology , Haifa 3200003, Israel.

出版信息

Langmuir. 2017 Mar 14;33(10):2485-2496. doi: 10.1021/acs.langmuir.6b03574. Epub 2017 Feb 28.

Abstract

Using ultrahigh resolution atomic force microscopy (AFM) operated in frequency modulation mode, we extend existing measurements of the force acting between hydrophobic surfaces immersed in water in three essential ways. (1) The measurement range, which was previously limited to distances longer than 2-3 nm, is extended to cover all distances, down to contact. The measurements disclose that the long-range attraction observed also by conventional techniques, turns at distances shorter than 1-2 nm into pronounced repulsion. (2) Simultaneous measurements of the dissipative component of the tip-surface interaction reveal an anomalously large dissipation commencing abruptly at the point where attraction begins. The dissipation is more than 2 orders of magnitude larger than expected from bulk water viscosity or from similar measurements between hydrophilic surfaces. (3) The short-range repulsion is oscillatory, indicating molecular ordering of the medium as the hydrophobic surfaces approach each other. The oscillation period, ∼0.5 nm, is larger than the ∼0.3 nm period observed with hydrophilic surfaces. Their range, ∼1.5 nm, is longer as well. These observations are consistent with a conspicuous change in the properties of the surrounding medium, taking place simultaneously with the onset of attraction as the two surfaces approach each other.

摘要

我们使用工作在调频模式下的超高分辨率原子力显微镜(AFM),从三个重要方面扩展了现有关于浸入水中的疏水表面之间相互作用力的测量。(1)测量范围从以前的大于 2-3nm 延伸到覆盖所有距离,直到接触。测量结果表明,常规技术观察到的长程吸引力在小于 1-2nm 的距离内会转变为明显的排斥力。(2)同时测量尖端-表面相互作用的耗散分量,揭示了一个异常大的耗散,它在吸引力开始的地方突然开始。这种耗散比从体相水粘度或类似的亲水表面之间的测量中预期的要大两个数量级以上。(3)短程排斥力是振荡的,表明当疏水表面相互接近时,介质的分子有序性。振荡周期约为 0.5nm,大于与亲水表面观察到的约 0.3nm 的周期。它们的范围,约 1.5nm,也更长。这些观察结果与周围介质的显著变化是一致的,这种变化与两个表面相互接近时吸引力的开始同时发生。

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