Surface wettability and capillary flow of water in nanoslits of two-dimensional hexagonal-boron nitride

六方氮化硼 润湿 物理 毛细管作用 六方晶系 流量(数学) 氮化硼 纳米技术 化学物理 机械 化学工程 气象学 结晶学 热力学 材料科学 石墨烯 化学 核物理学 工程类 量子力学
作者
Ya-Wun Lu,Hsin-Yu Chang,Heng‐Kwong Tsao,Yu‐Jane Sheng
出处
期刊:Physics of Fluids [American Institute of Physics]
卷期号:36 (9)
标识
DOI:10.1063/5.0224117
摘要

The wettability and imbibition dynamics of water within 2-dimensional hexagonal boron nitride (h-BN) nanochannels were investigated through nanoscale molecular dynamics simulations. Results from the sessile drop and liquid plug methods indicate that the contact angle on h-BN is notably lower than that on graphene, with single-layer h-BN exhibiting greater hydrophobicity compared to multilayer h-BN. The disjoining pressure in liquid nanoplug was calculated to validate the Young–Laplace equation. During the imbibition process, the penetration length follows l2 = Slt. Simultaneously, the decrease in internal energy (ΔE) follows ΔE = −SEt1/2. While the Lucas–Washburn expression (l2 ∼ wt) can capture such behavior, it does not account for the dependence on channel width (w), where w = Nb, with N denoting the number of h-BN sheets and b the thickness. In wide nanoslits (N > 4), the penetration velocity decreases as the channel width increases. The final ΔE converge to the same value, and SE2/Sl remains constant. In narrow nanoslits (N ≤ 4), the penetration velocity does not decrease consistently with channel width. The final ΔE does not converge to a consistent value for N = 1, 1.5, and 2, and SE exhibits distinct trends with Sl. Comparisons reveal that water in h-BN nanochannels exhibits a notably higher imbibition velocity than in graphene due to differences in the driving force.
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