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Arresting dissolution by interfacial rheology design
by
Gupta, Manish
, Baroud, Charles N.
, Liascukiene, Irma
, Gunes, Deniz Z.
, Beltramo, Peter J.
, Vermant, Jan
, Alicke, Alexandra
in
Air bubbles
/ Air-water interface
/ Bubbles
/ Design
/ Dissolution
/ Engineering
/ Microfluidics
/ Mud-water interfaces
/ Ostwald ripening
/ Physical Sciences
/ Rheological properties
/ Rheology
/ Yield strength
/ Yield stress
2017
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Arresting dissolution by interfacial rheology design
by
Gupta, Manish
, Baroud, Charles N.
, Liascukiene, Irma
, Gunes, Deniz Z.
, Beltramo, Peter J.
, Vermant, Jan
, Alicke, Alexandra
in
Air bubbles
/ Air-water interface
/ Bubbles
/ Design
/ Dissolution
/ Engineering
/ Microfluidics
/ Mud-water interfaces
/ Ostwald ripening
/ Physical Sciences
/ Rheological properties
/ Rheology
/ Yield strength
/ Yield stress
2017
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Arresting dissolution by interfacial rheology design
by
Gupta, Manish
, Baroud, Charles N.
, Liascukiene, Irma
, Gunes, Deniz Z.
, Beltramo, Peter J.
, Vermant, Jan
, Alicke, Alexandra
in
Air bubbles
/ Air-water interface
/ Bubbles
/ Design
/ Dissolution
/ Engineering
/ Microfluidics
/ Mud-water interfaces
/ Ostwald ripening
/ Physical Sciences
/ Rheological properties
/ Rheology
/ Yield strength
/ Yield stress
2017
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Journal Article
Arresting dissolution by interfacial rheology design
2017
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Overview
A strategy to halt dissolution of particle-coated air bubbles in water based on interfacial rheology design is presented. Whereas previously a dense monolayer was believed to be required for such an “armored bubble” to resist dissolution, in fact engineering a 2D yield stress interface suffices to achieve such performance at submonolayer particle coverages. We use a suite of interfacial rheology techniques to characterize spherical and ellipsoidal particles at an air–water interface as a function of surface coverage. Bubbles with varying particle coverages are made and their resistance to dissolution evaluated using a microfluidic technique. Whereas a bare bubble only has a single pressure at which a given radius is stable, we find a range of pressures over which bubble dissolution is arrested for armored bubbles. The link between interfacial rheology and macroscopic dissolution of ∼100 μm bubbles coated with ∼1 μm particles is presented and discussed. The generic design rationale is confirmed by using nonspherical particles, which develop significant yield stress at even lower surface coverages. Hence, it can be applied to successfully inhibit Ostwald ripening in a multitude of foam and emulsion applications.
Publisher
National Academy of Sciences
Subject
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