Department of Chemical Engineering , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 , United States.
Nano Lett. 2019 Mar 13;19(3):1539-1551. doi: 10.1021/acs.nanolett.8b04335. Epub 2019 Feb 5.
We investigate the wetting and frictional behavior of polar (water and ethylene glycol) and nonpolar (diiodomethane) liquids on the basal plane of hexagonal boron nitride (hBN) using molecular dynamics simulations. Our results for the wettability of water on the hBN basal plane (contact angle 81°) are in qualitative agreement with the experimentally deduced mild hydrophilicity of the hBN basal plane (contact angle 66°). We find that water exhibits the lowest wettability, as quantified by the highest contact angle, but the highest friction coefficient of (1.9 ± 0.4) × 10 N-s/m on the hBN basal plane among the three liquids considered. This intriguing finding is explained in terms of the competition between dispersion and electrostatic interactions operating between the hBN basal plane and the three liquids. We find that electrostatic interactions do not affect the wetting behavior appreciably, as quantified by a less than 3° change in the respective contact angles of the three liquids considered. On the other hand, electrostatic interactions are found to increase the friction coefficients of the three liquids in contact with hBN to different extents, indicating that despite the increased friction of water on hBN, relative to that on graphene, nonpolar liquids may exhibit similar friction coefficients on hBN and graphene. Our findings reveal that the increase in the friction coefficient, upon incorporation of solid-liquid electrostatic interactions, is brought about by a greater increase in the solid-liquid mean-squared total lateral force, as compared to a smaller reduction in the decorrelation time of the solid-liquid force.
我们使用分子动力学模拟研究了极性(水和乙二醇)和非极性(二碘甲烷)液体在六方氮化硼(hBN)基面的润湿和摩擦行为。我们对水在 hBN 基面的润湿性的结果(接触角 81°)与实验推断出的 hBN 基面的轻度亲水性(接触角 66°)定性一致。我们发现水的润湿性最低,表现为最高的接触角,但在考虑的三种液体中,水在 hBN 基面上的摩擦系数最高,为(1.9±0.4)×10 N-s/m。这种有趣的发现可以用 hBN 基面与三种液体之间的色散和静电相互作用之间的竞争来解释。我们发现静电相互作用对润湿性的影响不大,三种液体的相应接触角变化小于 3°。另一方面,静电相互作用被发现以不同的程度增加了与 hBN 接触的三种液体的摩擦系数,这表明尽管水在 hBN 上的摩擦相对于在石墨烯上的摩擦有所增加,但非极性液体在 hBN 和石墨烯上可能表现出相似的摩擦系数。我们的发现表明,在考虑固体-液体静电相互作用后,摩擦系数的增加是由固体-液体均方总侧向力的更大增加引起的,而不是固体-液体力的去相关时间的较小减小。