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Atomistic Insights into the Droplet Size Evolution During Self-Microemulsification

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Journal Langmuir
Specialty Chemistry
Date 2022 Mar 3
PMID 35238580
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Abstract

Microemulsions have been attracting great attention for their importance in various fields, including nanomaterial fabrication, food industry, drug delivery, and enhanced oil recovery. Atomistic insights into the self-microemulsifying process and the underlying mechanisms are crucial for the design and tuning of the size of microemulsion droplets toward applications. In this work, coarse-grained models were used to investigate the role that droplet sizes played in the preliminary self-microemulsifying process. Time evolution of liquid mixtures consisting of several hundreds of water/surfactant/oil droplets was resolved in large-scale simulations. By monitoring the size variation of the microemulsion droplets in the self-microemulsifying process, the dynamics of diameter distribution of water/surfactant/oil droplets were studied. The underlying mass transport mechanisms responsible for droplet size evolution and stability were elucidated. Specifically, temperature effects on the droplet size were clarified. This work provides the knowledge of the self-microemulsification of water-in-oil microemulsions at the nanoscale. The results are expected to serve as guidelines for practical strategies for preparing a microemulsion system with desirable droplet sizes and properties.

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References
1.
Arai N, Yasuoka K, Zeng X . Self-Assembly of Janus Oligomers into Onion-like Vesicles with Layer-by-Layer Water Discharging Capability: A Minimalist Model. ACS Nano. 2016; 10(8):8026-37. DOI: 10.1021/acsnano.6b04087. View

2.
Pal N, Dev Verma S, Singh M, Sen S . Fluorescence correlation spectroscopy: an efficient tool for measuring size, size-distribution and polydispersity of microemulsion droplets in solution. Anal Chem. 2011; 83(20):7736-44. DOI: 10.1021/ac2012637. View

3.
HARKINS W . A general theory of the mechanism of emulsion polymerization. J Am Chem Soc. 2010; 69(6):1428-44. DOI: 10.1021/ja01198a053. View

4.
Gyawali G, Sternfield S, Kumar R, Rick S . Coarse-Grained Models of Aqueous and Pure Liquid Alkanes. J Chem Theory Comput. 2017; 13(8):3846-3853. DOI: 10.1021/acs.jctc.7b00389. View

5.
Stillinger , Weber . Computer simulation of local order in condensed phases of silicon. Phys Rev B Condens Matter. 1985; 31(8):5262-5271. DOI: 10.1103/physrevb.31.5262. View