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Petal Effect:  A Superhydrophobic State with High Adhesive Force

Langmuir · 2008 · Vol. 24(8) · pp. 4114–4119
Feng LinYanan ZhangJinming XiYing ZhuNü WangFan XiaLei Jiang

Abstract

Hierarchical micropapillae and nanofolds are known to exist on the petals' surfaces of red roses. These micro- and nanostructures provide a sufficient roughness for superhydrophobicity and yet at the same time a high adhesive force with water. A water droplet on the surface of the petal appears spherical in shape, which cannot roll off even when the petal is turned upside down. We define this phenomenon as the "petal effect" as compared with the popular "lotus effect". Artificial fabrication of biomimic polymer films, with well-defined nanoembossed structures obtained by duplicating the petal's surface, indicates that the superhydrophobic surface and the adhesive petal are in Cassie impregnating wetting state.

Surface Modification and SuperhydrophobicityAdhesion, Friction, and Surface InteractionsAdvanced Sensor and Energy Harvesting MaterialsPetalLotus effectWettingAdhesiveFabricationSurface finishMaterials scienceSurface roughnessPolymerSurface energy

MeSH terms

AdhesivenessHelianthusMicroscopy, Electron, ScanningSurface PropertiesWaterLiliumFlowersHydrophobic and Hydrophilic Interactions
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