Abstract

Monodisperse resorcinol formaldehyde resin (RF) microspheres are an important polymeric material because of their rich surface functional group and uniform structural characteristics and have been increasingly applied as an electrode material, catalyst support, absorbent, and carbon microsphere precursor. The polymerization conditions, such as the gelation/solidification temperature and the residence time, can largely influence the physical properties and the formation of the 3D polymeric network of the RF microspheres as well as the carbon microspheres. However, few studies have reported on the complexity of the gelation and solidification processes of resol. In this work, we developed a new RF microsphere preparation device that contains three units: a droplet generation unit, a curing unit, and a collection unit. In this system, we controlled the gelation and solidification processes of the resol and observed its curing behavior, which helped us to uncover the curing mechanism of resol. Finally, we obtained the optimized polymerization parameters, obtaining uniform RF microspheres with a variation coefficient of 4.94%. The prepared porous RF microspheres presented a high absorption ability, reaching ~90% at 10 min. Thus, our method demonstrated the practicality of on-chip monodisperse microspheres synthesis. The product was useful in drug delivery and adsorbing large poisonous molecules.

Highlights

  • Monodisperse spherical resorcinol formaldehyde resin (RF) microspheres are attractive for their rich functional group, uniform size, tunable structure, high carbon content, and relatively low impurity

  • The two-stage curing unit can effectively distinguish the process via microfluidic technology

  • RF microspheres with good sphericity and and solidification processes for resol curing

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Summary

Introduction

Monodisperse spherical resorcinol formaldehyde resin (RF) microspheres are attractive for their rich functional group, uniform size, tunable structure, high carbon content, and relatively low impurity. These advantages make them a good material or carrier in biomedicine, chemical engineering, environmental science, and energy storage [1,2,3,4]. The droplet-based microfluidic technique can precisely control the entire material fabrication processes, and the microscale size benefits the mass and heat transfer rate [11,12,13,14].

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