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Updated: Sep 17, 2026

Microfluidic Preparation of Liquid Crystalline Elastomer Actuators
Published on: May 20, 2018
Kinetic gating of interfacial instability directs topology evolution in flow-regulated interfacial polymerization
Hongxu Zhan1, Yonglin Zhang1, Ying Zhao1
1Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong SAR, China. maeyang@ust.hk.
Abstract:
Interfacial polymerization (IP) is fundamentally governed by the reaction-induced phase separation (RIPS), a condensed chemical process that enables the fabrication of functional polymer films, microcapsules, and nanofibers. However, IP topology evolution is highly non-equilibrium, with thermodynamic phase separation and kinetic barriers remaining difficult to decouple and control. In this work, we isolated and quantified thermodynamic-kinetic competition using coaxial microfluidics, employing fluid advection as a tunable kinetic parameter to gate thermodynamic instability. Two distinct pathways emerge: thermodynamically-dominated yielding disordered precipitation, and kinetically-dominated suppressing bulk separation and enabling ordered growth. Additionally, we proposed steady interfacial flow velocity as a quantitative descriptor, validated by phenomenological modeling and experimental data. Furthermore, a reaction-diffusion-advection model was developed to reveal the microscale free energy landscape governing oligomer generation versus advective removal. This framework demonstrates how external kinetic fields regulate non-equilibrium topological pathways, enabling predictive rational design of functional polymers through condensed chemical principles.
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