Morphology-Controlled Transition between Interfacial Slip and Drag over a Pinned Surface Nanobubble under Electrowetting-Inspired Control

Abstract Surface nanobubbles are known to influence interfacial slip and near-wall hydrodynamics, yet the role of actively controlled nanobubble morphology in regulating momentum transfer at solid–liquid interfaces remains insufficiently understood. Here, nonequilibrium molecular dynamics simulations are used to investigate a pinned surface nanobubble located at a wettability step in a confined water nanochannel. An electrowetting-inspired interfacial forcing (Fext) is applied near the solid surface to tune the effective solid–liquid wettability, thereby inducing reversible deformation of the pinned nanobubble from a flattened configuration to a more protruding morphology. The resulting velocity fields, effective slip lengths, and wall shear stresses reveal a pronounced nonmonotonic dependence of hydrodynamic drag on nanobubble morphology. For small protrusion angles, the gas–liquid interface behaves as a slip boundary that reduces near-wall viscous dissipation. As the protrusion angle increases, the nanobubble increasingly acts as a geometric obstacle, inducing flow recirculation and increasing flow resistance. Bubble deformation is also accompanied by internal gas-phase circulation that couples with the external shear flow and modifies the near-wall hydrodynamics. These results clarify how nanobubble morphology mediates the transition between slip enhancement and drag increase and provide insight into flow regulation at gas-structured interfaces.

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Publication Details

Journal
Langmuir
Published
2026-09-09
DOI
https://doi.org/10.1021/acs.langmuir.6c01587
Primary Topic
Minerals Flotation and Separation Techniques
Type
article
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article

Morphology-Controlled Transition between Interfacial Slip and Drag over a Pinned Surface Nanobubble under Electrowetting-Inspired Control

Chong Qiao, Yan Chen, Xiaolong Zhang, Yunyun Zhang
Langmuir
Minerals Flotation and Separation Techniques
article

Morphology-Controlled Transition between Interfacial Slip and Drag over a Pinned Surface Nanobubble under Electrowetting-Inspired Control

Chong Qiao, Yan Chen, Xiaolong Zhang, Yunyun Zhang
article en

Abstract

Abstract Surface nanobubbles are known to influence interfacial slip and near-wall hydrodynamics, yet the role of actively controlled nanobubble morphology in regulating momentum transfer at solid–liquid interfaces remains insufficiently understood. Here, nonequilibrium molecular dynamics simulations are used to investigate a pinned surface nanobubble located at a wettability step in a confined water nanochannel. An electrowetting-inspired interfacial forcing (Fext) is applied near the solid surface to tune the effective solid–liquid wettability, thereby inducing reversible deformation of the pinned nanobubble from a flattened configuration to a more protruding morphology. The resulting velocity fields, effective slip lengths, and wall shear stresses reveal a pronounced nonmonotonic dependence of hydrodynamic drag on nanobubble morphology. For small protrusion angles, the gas–liquid interface behaves as a slip boundary that reduces near-wall viscous dissipation. As the protrusion angle increases, the nanobubble increasingly acts as a geometric obstacle, inducing flow recirculation and increasing flow resistance. Bubble deformation is also accompanied by internal gas-phase circulation that couples with the external shear flow and modifies the near-wall hydrodynamics. These results clarify how nanobubble morphology mediates the transition between slip enhancement and drag increase and provide insight into flow regulation at gas-structured interfaces.

Langmuir
Nanyang Institute of Technology (CN)
Openalex Percentile: Top 20%
Minerals Flotation and Separation Techniques
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Morphology-Controlled Transition between Interfacial Slip and Drag over a Pinned Surface Nanobubble under Electrowetting-Inspired Control — Chong Qiao, Yan Chen, et al. · Langmuir (2026) | TGRS Research Map | TGRS