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April 19, 2026Fire0 citationsOpen Access

Synergistic Effect of Magnesium Borate Whiskers on Antidripping and Fire Resistance of Intumescent Flame Retardant Polypropylene Composites

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ZLZihan LuCentral South UniversityJZJ ZHUTongji UniversityZWZi WangMinistry of Education of the People's Republic of China

Key Points

  • The aim is to develop a flame-retardant polypropylene composite with improved fire resistance and mechanical integrity.
  • Utilized a synergistic flame retardancy system by incorporating magnesium borate whiskers into polypropylene composites.
  • Conducted cone calorimetry tests to evaluate flame performance and heat release.
  • Performed morphological studies of char residue using Raman spectroscopy and SEM.
  • Achieved an 80% reduction in peak heat release rate compared to neat polypropylene.
  • Achieved a V-0 rating in UL-94 tests, indicating effective suppression of flaming drips.
  • Retained over 89% of original tensile strength, reflecting minimal loss in mechanical properties.

Abstract

The development of high-performance flame-retardant (FR) polypropylene (PP) with high mechanical integrity remains a challenge. Herein, we demonstrate a synergistic flame retardancy system for PP achieved via partial substitution of piperazine pyrophosphate (PAPP) with 1 wt.% magnesium borate whiskers (MBW) for improved flame retardancy, and thermal and mechanical properties. The optimized PP/24PAPP/1MBW exhibits exceptional FR performance, driven by the formation of a highly ordered, continuous phosphorus–boron hybrid char in the condensed phase. Cone calorimetry test results reveal an 80% reduction in peak heat release rate, a 54% reduction in total heat release, and a 33% reduction in total smoke production compared to neat PP, while the UL-94 test confirms a V-0 rating with complete suppression of flaming drips. Morphological study of the char residue using Raman spectroscopy and SEM attributes this performance to enhanced char graphitization and structural coherence enabled by boron-mediated cross-linking. More importantly, this transformative flame retardancy performance is achieved without severe compromise to mechanical properties, retaining over 89% of the original tensile strength. This work confirms the PAPP/MBW system as a highly efficient, low-additive approach to creating advanced fire-safe polymer composites for engineering applications.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/69e473bd010ef96374d8f7a6https://doi.org/10.3390/fire9040171
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