Facile Fabrication of Double-Shell PA-MEL@PU@CFO Microcapsules and Their Fire Suppression Performance in Confined Spaces

Novel double-shell PA-MEL@PU@CFO microcapsules were successfully prepared by further coating the as-prepared PU@CFO microcapsules with the outer shell of phytic acid-melamine salt (PA-MEL). The fire suppression performance was then investigated in a simulated confined space experimental device. Effects of the emulsification conditions on the morphology of microcapsules were investigated in detail. Systematic characterization results demonstrated that the double-shell structure was successfully constructed. PA-MEL@PU@CFO microcapsules fabricated under the optimal emulsification conditions exhibited regular spherical morphology with rough flocculent surface and uniform particle size. The introduction of the outer PA-MEL shell raises the release temperature of core material, thereby improving the low-temperature storage stability of the microcapsules and facilitating their storage and transportation. PA-MEL@PU@CFO microcapsules exhibited favorable storage stability overall, with a relatively high core content of 53.18%. PA-MEL@PU@CFO microcapsules demonstrated excellent flame retardant and fire-extinguishing performance for the fires in confined spaces at the incipient fire stage, reducing the maximum flame temperature by 238.6 °C, shortening the extinguishing time by 53 s, and effectively inhibiting flame re-ignition. PA-MEL@PU@CFO microcapsules achieved efficient fire suppression by a synergistic effect of physical cooling, chemical suppression and phosphorus–nitrogen synergistic flame retardancy. PA-MEL@PU@CFO microcapsules hold great practical application potential in practical application such as anti-flame coatings and lithium-ion batteries.

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Publication Details

Journal
Materials
Published
2026-09-28
DOI
https://doi.org/10.3390/ma19194135
Primary Topic
Flame retardant materials and properties
Type
article
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article

Facile Fabrication of Double-Shell PA-MEL@PU@CFO Microcapsules and Their Fire Suppression Performance in Confined Spaces

Honglai Xue, Yingchu Wang, Zhe Wen, Hongxiang Ou et al.
Materials
Flame retardant materials and properties
article

Facile Fabrication of Double-Shell PA-MEL@PU@CFO Microcapsules and Their Fire Suppression Performance in Confined Spaces

Honglai Xue, Yingchu Wang, Zhe Wen, Hongxiang Ou, Lingfeng Xiong, Fang Zhu, Zihan Wang
article en

Abstract

Novel double-shell PA-MEL@PU@CFO microcapsules were successfully prepared by further coating the as-prepared PU@CFO microcapsules with the outer shell of phytic acid-melamine salt (PA-MEL). The fire suppression performance was then investigated in a simulated confined space experimental device. Effects of the emulsification conditions on the morphology of microcapsules were investigated in detail. Systematic characterization results demonstrated that the double-shell structure was successfully constructed. PA-MEL@PU@CFO microcapsules fabricated under the optimal emulsification conditions exhibited regular spherical morphology with rough flocculent surface and uniform particle size. The introduction of the outer PA-MEL shell raises the release temperature of core material, thereby improving the low-temperature storage stability of the microcapsules and facilitating their storage and transportation. PA-MEL@PU@CFO microcapsules exhibited favorable storage stability overall, with a relatively high core content of 53.18%. PA-MEL@PU@CFO microcapsules demonstrated excellent flame retardant and fire-extinguishing performance for the fires in confined spaces at the incipient fire stage, reducing the maximum flame temperature by 238.6 °C, shortening the extinguishing time by 53 s, and effectively inhibiting flame re-ignition. PA-MEL@PU@CFO microcapsules achieved efficient fire suppression by a synergistic effect of physical cooling, chemical suppression and phosphorus–nitrogen synergistic flame retardancy. PA-MEL@PU@CFO microcapsules hold great practical application potential in practical application such as anti-flame coatings and lithium-ion batteries.

MaterialsVol. 19(19)
University of Science and Technology of China (CN), Changzhou University (CN), State Key Laboratory of Fire Science
Affordable and clean energy
Openalex Percentile: Top 24%
Flame retardant materials and properties
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