论文标题

石墨烯上水的滑动长度的透明度和负温度依赖性

Translucency and negative temperature-dependence for the slip length of water on graphene

论文作者

Li, Han, Xu, Zhi, Ma, Chen, Ma, Ming

论文摘要

由于固体和液体之间的界面处的滑动,碳材料(例如石墨烯和碳纳米管)在纳米流体田中引起了极大的关注。水对水的依赖性对辅助底物的类型和碳层厚度的依赖性,这对于诸如电子设备的可持续冷却等应用至关重要。在本文中,使用胶体探针原子力显微镜,我们测量了由亲水性和疏水性底物(即SIO2和八甲基三甲氧基硅烷(OT))支撑的石墨烯LS上的水长度。发现由SIO2支持的单层石墨烯上的LS为1.6〜1.9 nm,OTS为8.5〜0.9 nm。随着几层石墨烯的厚度增加到3〜4层,两层逐渐收敛到石墨的值(4.3〜3.5 nm)。这种厚度依赖性称为滑动长度的透明度。此外,对于由SIO2支持的2层石墨烯而言,随着温度从300 K升高到350 K,LS的温度从300 K升高到350 K。这些观察结果是通过基于绿色 - 库博关系和麦克拉克兰理论的分析来解释的。我们的结果为受支持的几层石墨烯上的水的滑动长度提供了第一组参考值。它们不仅可以作为固定液体相互作用的直接实验参考,而且还可以为基于纳米流体的设备的设计提供指南,例如热机电纳米流体设备。

Carbonous materials, such as graphene and carbon nanotube, have attracted tremendous attention in the fields of nanofluidics due to the slip at the interface between solid and liquid. The dependence of slip length for water on the types of supporting substrates and thickness of carbonous layer, which is critical for applications such as sustainable cooling of electronic devices, remains unknown. In this paper, using colloidal probe atomic force microscope, we measured the slip length of water on graphene ls supported by hydrophilic and hydrophobic substrates, i.e., SiO2 and octadecyltrimethoxysilane (OTS). The ls on single-layer graphene supported by SiO2 is found to be 1.6~1.9 nm, and by OTS is 8.5~0.9 nm. With the thickness of few-layer graphene increases to 3~4 layers, both ls gradually converge to the value of graphite (4.3~3.5 nm). Such thickness dependence is termed slip length translucency. Further, ls is found to decrease by about 70% with the temperature increases from 300 K to 350 K for 2-layer graphene supported by SiO2. These observations are explained by analysis based on Green-Kubo relation and McLachlan theory. Our results provide the first set of reference values for the slip length of water on supported few-layer graphene. They can not only serve as a direct experimental reference for solid-liquid interaction, but also provide guideline for the design of nanofluidics-based devices, for example the thermo-mechanical nanofluidic devices.

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