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Energy dissipation of nanoconfined hydration layer: Long-range hydration on the hydrophilic solid surface

机译:纳米约束水化层的能量耗散:亲水性固体表面的长距离水化

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摘要

The hydration water layer (HWL), a ubiquitous form of water on the hydrophilic surfaces, exhibits anomalous characteristics different from bulk water and plays an important role in interfacial interactions. Despite extensive studies on the mechanical properties of HWL, one still lacks holistic understanding of its energy dissipation, which is critical to characterization of viscoelastic materials as well as identification of nanoscale dissipation processes. Here we address energy dissipation of nanoconfined HWL between two atomically flat hydrophilic solid surfaces (area of ~120 nm2) by small amplitude-modulation, noncontact atomic force microscopy. Based on the viscoelastic hydration-force model, the average dissipation energy is ~1 eV at the tapping amplitude (~0.1 nm) of the tip. In particular, we determine the accurate HWL thickness of ~6 layers of water molecules, as similarly observed on biological surfaces. Such a long-range interaction of HWL should be considered in the nanoscale phenomena such as friction, collision and self-assembly.
机译:水合水层(HWL)是亲水性表面上的一种普遍存在的水形式,具有不同于大量水的异常特性,并且在界面相互作用中起着重要的作用。尽管对HWL的机械性能进行了广泛的研究,但人们仍然缺乏对其能量耗散的全面了解,这对于表征粘弹性材料以及鉴定纳米级耗散过程至关重要。在这里,我们通过小幅度调制,非接触式原子力显微镜研究了两个原子平坦的亲水性固体表面(〜120 nm 2 区域)之间的纳米约束HWL的能量耗散。根据粘弹性水力模型,在尖端的敲击幅度(〜0.1 nm)处,平均耗散能量为〜1 eV。特别是,我们确定了约6层水分子的精确HWL厚度,这与在生物表面上观察到的情况类似。应该在诸如摩擦,碰撞和自组装的纳米级现象中考虑HWL的这种远程相互作用。

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