Wetting Transitions on an Auxetic Metamaterial
POSTER
Abstract
Superhydrophobicity holds significant importance across various applications. Recently, we have showcased the potential of auxetic metamaterials in creating superhydrophobic materials that possess unique wetting properties. However, these desirable properties are lost when the liquid infiltrates the surface structure. Hence, it is crucial to comprehend the factors governing droplet penetration in order to advance wetting control. In this study, we employ a surface energy argument to identify the critical elements that influence droplet suspension and penetration on an auxetic bowtie/honeycomb lattice structure. We develop a comprehensive physical model that represents different states of strain, ranging from auxetic to conventional lattices, while considering the variation in liquid surface tension using water/ethanol mixtures. By investigating the interplay between surface energy and lattice structure, we gain valuable insights into the conditions required for droplet suspension and penetration. Moreover, we identify a simple touch test that enables the distinction between the different wetting states (suspended versus penetrating), providing a practical and efficient method for characterization.
Publication: McHale G., Alderson A., Armstrong S., Mandhani S., Meyari M., Wells G. G., Carter E.,Ledesma-Aguilar R., Semprebon C., and Evans K.E., arXiv:2306.02916 [cond-mat.soft]<br>"Superhydrophobicity of Auxetic Metamaterials," (2023).
Presenters
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Rodrigo Ledesma-Aguilar
The University of Edinburgh
Authors
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Rodrigo Ledesma-Aguilar
The University of Edinburgh
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Steven Armstrong
The University of Edinburgh, University of Edinburgh
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glen McHale
The University of Edinburgh, Univ of Edinburgh, University of Edinburgh
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Andrew Alderson
Sheffield Hallam University, Sheffield Hallam Univeristy
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Shruti Mandhani
Sheffield Hallam University, University of Sheffield
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Mahya Meyari
The University of Edinburgh
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Gary G Wells
The University of Edinburgh, University of Edinburgh
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Emma Carter
Sheffield Hallam University
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Ciro Semprebon
Northumbria university