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◆ Langmuir : the ACS journal of surfaces and colloids2026-09-01

Inclination-Induced Interfacial Asymmetry and Tangential Force Balance of Bubbles Pinned at Wetting-Step Boundaries.

Shuai Qiao, Wen Li, Zhe Yang, Dewei Fan, Chong Pan

原始摘要(英文原文)· Original abstract
Bubble growth on inclined surfaces is governed by the coupling among buoyancy, interfacial deformation, and three-phase contact-line constraint. Here, we experimentally investigate quasi-static bubble growth and detachment on superhydrophobic substrates patterned with a circular wetting-step line, which pins the three-phase contact line throughout the prenecking stage. Increasing substrate inclination shortens the detachment period while maintaining cycle-to-cycle coefficients of variation below 2%. Because lateral contact-line motion is suppressed, the substrate-parallel component of buoyancy produces both inclination-dependent global shape deformation and progressively stronger lateral asymmetry, characterized by a higher aspect ratio at a given normalized growth stage and a larger lateral offset of the projected bubble centroid, respectively. The apparent contact-angle distribution also becomes asymmetric: the upslope advancing-side angle decreases during growth, whereas the downslope receding-side angle remains comparatively high, causing the apparent contact-angle difference to increase throughout the prenecking stage. A quasi-static tangential force balance, formulated using the resultant capillary traction along the pinned circular boundary, quantitatively relates the dimensionless tangential load to the measured contact-angle asymmetry. A zero-intercept regression yields an effective retention coefficient of 0.8683 with R2 = 0.9989, while the coefficients evaluated separately at each nonzero inclination differ from the global regression value by less than 4% and exhibit no monotonic dependence on inclination. These results establish a reduced interfacial-mechanics description of the critical prenecking state under geometric contact-line constraint and clarify how inclination-induced tangential buoyancy is accommodated through coupled interfacial and apparent-contact-angle asymmetry, providing a mechanistic basis for regulating bubble growth and release on wettability-patterned surfaces.
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Inclination-Induced Interfacial Asymmetry and Tangential Force Balance of Bubbles Pinned at Wetting-Step Boundaries. — 科研速览 Science Skim