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February 8, 2026Coatings2 citationsOpen Access

Mechanically Enhanced Flame Retardant Polyester/Cotton Fabric with Bio-Inspired Phosphorus/Nitrogen Synergistic Coating

SCSilu ChenMKMingjia KangYLYin Li

Key Points

  • This research aims to improve the fire resistance and mechanical properties of polyester/cotton blended fabrics using a bio-inspired coating.
  • Developed a phosphorus/nitrogen synergistic coating inspired by mussel adhesion chemistry.
  • Applied a uniform polydopamine-polyethylenimine layer through co-deposition to prevent dopamine self-polymerization.
  • Performed cone calorimetry to measure peak heat release rate and total heat release for fire performance evaluation.
  • Assessed mechanical properties, including breaking strength and elongation, of the treated fabrics.
  • Achieved a 57.7% reduction in peak heat release rate and a 32.6% reduction in total heat release.
  • Increased weft-direction breaking strength by 55% and elongation at break by 27.2%.
  • Established a high limiting oxygen index of 24.6%, indicating improved fabric safety.

Abstract

Polyester/cotton blended fabrics—valued for comfort and durability—face significant fire hazards due to a synergistic “scaffold effect” during combustion. Conventional treatments with high temperature or some acidic phosphorus flame retardants during preparation often compromise the mechanical strength. Inspired by mussel adhesion chemistry, a mechanically enhanced polyester/cotton fabric was developed by using a novel bio-inspired phosphorus/nitrogen (P/N) synergistic coating. A uniform polydopamine-polyethylenimine (PDA-PEI) layer is rapidly deposited via co-deposition, suppressing dopamine self-polymerization. Subsequent covalent bonding with 2,2-dimethyl-1,3-propanediyl bis (phosphoryl chloride) (DPPC) establishes a robust P/N network. The fabricated PDA-PEI/DPPC coating reduces peak heat release rate (pHRR) and total heat release (THR) by 57.7% and 32.6%, respectively, in cone calorimetry, achieving self-extinguishment and a high limiting oxygen index (LOI) of 24.6%. Remarkably, the coating simultaneously increases the weft-direction breaking strength by 55% and elongation at break by 27.2%; these changes overcome the typical mechanical degradation associated with acidic phosphorus flame retardants. A comprehensive analysis reveals a synergistic mechanism: phosphoric acids catalyze cellulose dehydration and char layer formation in the condensed phase (90% stable C–C bonds), while radical scavengers (PO·, HPO·, and PDA) and non-flammable gases suppressed gas-phase combustion. This work presents a facile and effective strategy for fabricating high-performance and mechanically robust flame retardant polyester/cotton textiles, demonstrating the significant potential for improving fire safety in practical applications.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/698828210fc35cd7a8847615https://doi.org/10.3390/coatings16020202
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