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Beyond Cassie equation: local structure of heterogeneous surfaces determines the contact angles of microdroplets.


ABSTRACT: The application of Cassie equation to microscopic droplets is recently under intense debate because the microdroplet dimension is often of the same order of magnitude as the characteristic size of substrate heterogeneities, and the mechanism to describe the contact angle of microdroplets is not clear. By representing real surfaces statistically as an ensemble of patterned surfaces with randomly or regularly distributed heterogeneities (patches), lattice Boltzmann simulations here show that the contact angle of microdroplets has a wide distribution, either continuous or discrete, depending on the patch size. The origin of multiple contact angles observed is ascribed to the contact line pinning effect induced by substrate heterogeneities. We demonstrate that the local feature of substrate structure near the contact line determines the range of contact angles that can be stabilized, while the certain contact angle observed is closely related to the contact line width.

SUBMITTER: Zhang B 

PROVIDER: S-EPMC5376047 | biostudies-literature | 2014 Jul

REPOSITORIES: biostudies-literature

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Beyond Cassie equation: local structure of heterogeneous surfaces determines the contact angles of microdroplets.

Zhang Bo B   Wang Jianjun J   Liu Zhiping Z   Zhang Xianren X  

Scientific reports 20140725


The application of Cassie equation to microscopic droplets is recently under intense debate because the microdroplet dimension is often of the same order of magnitude as the characteristic size of substrate heterogeneities, and the mechanism to describe the contact angle of microdroplets is not clear. By representing real surfaces statistically as an ensemble of patterned surfaces with randomly or regularly distributed heterogeneities (patches), lattice Boltzmann simulations here show that the c  ...[more]

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