Back to Search Start Over

Graphene-assisted wetting transition on grooved surfaces: A molecular dynamics study.

Authors :
Ma, Hechuan
Zhang, Jie
Wu, Jianyang
Wen, Kaiqiang
Wang, Shuo
Han, Yufei
Tian, Hongmiao
Xu, Peijun
Chen, Xiaoming
Shao, Jinyou
Source :
Computational Materials Science. Jun2022, Vol. 209, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

In this work, the influence of a monolayer graphene (MLG) on the wetting behaviors of grooved copper is thoroughly investigated. Our outcomes signify that the coating with MLG can remarkably reduce the activation energy required for the infiltration of the water molecules film into copper grooves, thereby triggering the wetting transition from the Cassie-Baxter (CB) to Wenzel (WZ) state. The tunable wettability by the coating engineering approach of MLG is holding great potentials for the fabrication of high aspect ratio structures. [Display omitted] • The wettability of the grooved copper surface is thoroughly investigated. • The monolayer graphene coating triggered wetting (CB-to-WZ) transitions on the structured surface. • The sidewall graphene plays an important role in activating the penetration of the water molecular into the groove. • MLG-coating provides a new route for the fabrication of high aspect ratio micro/nano structures. The various high aspect ratio micro/nano structures that are duplicated by the widely applicable micro/nanomolding process would require excellent wettability of the structured mold for full filling of the liquid-like materials into microcavities. Herein, by employing molecular dynamics (MD) simulations, the influence of a monolayer graphene (MLG) on the wetting behaviors of grooved copper is thoroughly investigated, indicating that MLG is an effective approach in modulating the wettability of the structured copper surfaces. Moreover, the extracted outcomes signify that the coating with MLG reduces remarkably the required activation energy for the infiltration of water molecules into the copper groove, thereby triggering the wetting transition from the Cassie-Baxter (CB) to the Wenzel (WZ) state. In addition, by varying the coating locations and dimension of the MLG, it is unveiled that the sidewall coating of MLG plays a crucial role in reducing the free energy barrier needed to surmount the transition state. Interestingly, as the coating height of sidewall MLG increases, the energy barrier is reduced, and the grooved surface becomes more attractive to water molecular, attaining a stable WZ state by employing a height beyond the critical value of MLG coating of 12.4 Å in our model. Our work provides useful insights into the tunable wettability of the grooved surfaces by nanocoating engineering, suggesting that MLG can be an effective coating solution in the fabrication of novel micro/nanostructures with high aspect ratios. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09270256
Volume :
209
Database :
Academic Search Index
Journal :
Computational Materials Science
Publication Type :
Academic Journal
Accession number :
156506153
Full Text :
https://doi.org/10.1016/j.commatsci.2022.111415