Issue 14, 2024

Microfluidic fabrication of monodisperse microcapsules with gas cores

Abstract

A facile strategy for efficient and continuous fabrication of monodisperse gas-core microcapsules with controllable sizes and excellent ultrasound-induced burst performances is developed based on droplet microfluidics and interfacial polymerization. Monodisperse gas-in-oil-in-water (G/O/W) double emulsion droplets with a gas core and monomer-contained oil layer are fabricated in the upstream of a microfluidic device as templates, and then water-soluble monomers are added into the aqueous continuous phase in the downstream to initiate rapid interfacial polymerization at the O/W interfaces to prepare monodisperse gas-in-oil-in-solid (G/O/S) microcapsules with gas cores. The sizes of both microbubbles and G/O/W droplet templates can be precisely controlled by adjusting the gas supply pressure and the fluid flow rates. Due to the very thin shells of G/O/S microcapsules fabricated via interfacial polymerization, the sizes of the resultant G/O/S microcapsules are almost the same as those of the G/O/W droplet templates, and the microcapsules exhibit excellent deformable properties and ultrasound-induced burst performances. The proposed strategy provides a facile and efficient route for controllably and continuously fabricating monodisperse microcapsules with gas cores, which are highly desired for biomedical applications.

Graphical abstract: Microfluidic fabrication of monodisperse microcapsules with gas cores

Supplementary files

Article information

Article type
Paper
Submitted
22 May 2024
Accepted
23 Jun 2024
First published
25 Jun 2024

Lab Chip, 2024,24, 3556-3567

Microfluidic fabrication of monodisperse microcapsules with gas cores

S. Yang, W. Song, L. Fan, C. Deng, R. Xie, W. Wang, Z. Liu, D. Pan, X. Ju and L. Chu, Lab Chip, 2024, 24, 3556 DOI: 10.1039/D4LC00443D

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