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Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field

The electrohydrodynamic deformation of an emulsion droplet with a clean and particle-covered interface was explored. Here, the electrohydrodynamic deformation was numerically and experimentally demonstrated under the stimuli of moderate and strong electric fields. The numerical method involves the c...

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Autores principales: Abbasi, Muhammad Salman, Farooq, Haroon, Ali, Hassan, Kazim, Ali Hussain, Nazir, Rabia, Shabbir, Aqsa, Cho, Seongsu, Song, Ryungeun, Lee, Jinkee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7372396/
https://www.ncbi.nlm.nih.gov/pubmed/32635514
http://dx.doi.org/10.3390/ma13132984
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author Abbasi, Muhammad Salman
Farooq, Haroon
Ali, Hassan
Kazim, Ali Hussain
Nazir, Rabia
Shabbir, Aqsa
Cho, Seongsu
Song, Ryungeun
Lee, Jinkee
author_facet Abbasi, Muhammad Salman
Farooq, Haroon
Ali, Hassan
Kazim, Ali Hussain
Nazir, Rabia
Shabbir, Aqsa
Cho, Seongsu
Song, Ryungeun
Lee, Jinkee
author_sort Abbasi, Muhammad Salman
collection PubMed
description The electrohydrodynamic deformation of an emulsion droplet with a clean and particle-covered interface was explored. Here, the electrohydrodynamic deformation was numerically and experimentally demonstrated under the stimuli of moderate and strong electric fields. The numerical method involves the coupling of the Navier–Stokes equation with the level set equation of interface tracking and the governing equations of so-called leaky dielectric theory. The simulation model developed for a clean interface droplet was then extended to a capsule model for densely particle-covered droplets. The experiments were conducted using various combinations of immiscible oils and particle suspensions while the electric field strength ~10(5) V/m was generated using a high voltage supply. The experimental images obtained by the camera were post-processed using an in-house image processing code developed on the plat-form of MATLAB software. The results show that particle-free droplets can undergo prolate (deformation in the applied electric field direction) or oblate deformation (deformation that is perpendicular to the direction of the applied electric field) of the droplet interface, whereas the low-conductivity particles can be manipulated at the emulsion interface to form a ‘belt’, ‘helmet’ or ‘cup’ morphologies. A densely particle-covered droplet may not restore to its initial spherical shape due to ‘particle jamming’ at the interface, resulting in the formation of unique droplet shapes. Densely particle-covered droplets behave like droplets covered with a thin particle sheet, a capsule. The deformation of such droplets is explored using a simulation model under a range of electric capillary numbers (i.e., the ratio of the electric stresses to the capillary stresses acting at the droplet interface). The results obtained are then compared with the theory and experimental findings. It was shown that the proposed simulation model can serve as a tool to predict the deformation/distortion of both the particle-free and the densely particle-covered droplets within the small deformation limit. We believe that this study could provide new findings for the fabrication of complex-shaped species and colloidosomes.
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spelling pubmed-73723962020-08-05 Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field Abbasi, Muhammad Salman Farooq, Haroon Ali, Hassan Kazim, Ali Hussain Nazir, Rabia Shabbir, Aqsa Cho, Seongsu Song, Ryungeun Lee, Jinkee Materials (Basel) Article The electrohydrodynamic deformation of an emulsion droplet with a clean and particle-covered interface was explored. Here, the electrohydrodynamic deformation was numerically and experimentally demonstrated under the stimuli of moderate and strong electric fields. The numerical method involves the coupling of the Navier–Stokes equation with the level set equation of interface tracking and the governing equations of so-called leaky dielectric theory. The simulation model developed for a clean interface droplet was then extended to a capsule model for densely particle-covered droplets. The experiments were conducted using various combinations of immiscible oils and particle suspensions while the electric field strength ~10(5) V/m was generated using a high voltage supply. The experimental images obtained by the camera were post-processed using an in-house image processing code developed on the plat-form of MATLAB software. The results show that particle-free droplets can undergo prolate (deformation in the applied electric field direction) or oblate deformation (deformation that is perpendicular to the direction of the applied electric field) of the droplet interface, whereas the low-conductivity particles can be manipulated at the emulsion interface to form a ‘belt’, ‘helmet’ or ‘cup’ morphologies. A densely particle-covered droplet may not restore to its initial spherical shape due to ‘particle jamming’ at the interface, resulting in the formation of unique droplet shapes. Densely particle-covered droplets behave like droplets covered with a thin particle sheet, a capsule. The deformation of such droplets is explored using a simulation model under a range of electric capillary numbers (i.e., the ratio of the electric stresses to the capillary stresses acting at the droplet interface). The results obtained are then compared with the theory and experimental findings. It was shown that the proposed simulation model can serve as a tool to predict the deformation/distortion of both the particle-free and the densely particle-covered droplets within the small deformation limit. We believe that this study could provide new findings for the fabrication of complex-shaped species and colloidosomes. MDPI 2020-07-04 /pmc/articles/PMC7372396/ /pubmed/32635514 http://dx.doi.org/10.3390/ma13132984 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abbasi, Muhammad Salman
Farooq, Haroon
Ali, Hassan
Kazim, Ali Hussain
Nazir, Rabia
Shabbir, Aqsa
Cho, Seongsu
Song, Ryungeun
Lee, Jinkee
Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title_full Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title_fullStr Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title_full_unstemmed Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title_short Deformation of Emulsion Droplet with Clean and Particle-Covered Interface under an Electric Field
title_sort deformation of emulsion droplet with clean and particle-covered interface under an electric field
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7372396/
https://www.ncbi.nlm.nih.gov/pubmed/32635514
http://dx.doi.org/10.3390/ma13132984
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