TY - JOUR
T1 - Sol-gel synthesis and enhanced properties of a novel transparent PMMA based organic-inorganic hybrid containing phosphorus, nitrogen and silicon
AU - Jiang, Saihua
AU - Yu, Bin
AU - Zhou, Keqing
AU - Yang, Hongyu
AU - Shi, Yongqian
AU - Lo, Siuming
AU - Hu, Yuan
AU - Gui, Zhou
PY - 2014/2
Y1 - 2014/2
N2 - A novel flame-retardant silane containing phosphorus and nitrogen, tetramethyl(3-(triethoxysilyl)propylazanediyl) bis(methylene) diphosphonate (TMSAP), is firstly synthesized and then incorporated into poly(methyl methacrylate) (PMMA) matrix through sol-gel method to produce organic-inorganic hybrids. The chemical structure of TMSAP was confirmed by Fourier transform infrared spectra, 1H nuclear magnetic resonance (NMR) and 31P NMR spectra. The hybrids obtained maintain relatively high transparency, and exhibit a significant improvement in thermal properties, mechanical performance and flame retardancy when compared to pure PMMA, including increased glass transition temperature (T g ) by 11.4 C, increased onset thermal degradation temperature (T0.1) by 82.6 C, increased half thermal degradation temperature (T0.5) by 42.0 C, increased hardness, increased limited oxygen index and decreased heat release rate. Morphological studies of hybrids by scanning electron microscopy (SEM) and 29Si MAS NMR suggest that cross-linked silica network is formed in the hybrids and the inorganic silica particles are distributed well in the polymer matrix. Thermal degradation behaviors investigated by thermogravimetric analysis and char structure analysis studied by SEM and X-ray photoelectron spectroscopy demonstrate the catalytic charring function of TMSAP, and synergistic effect between phosphorus, nitrogen and silicon element. The formation of network structure, homogeneous distribution of silica and the char formation during degradation play key roles in these property enhancements. Detailed mechanisms for these enhancements are proposed. © 2013 Springer Science+Business Media New York.
AB - A novel flame-retardant silane containing phosphorus and nitrogen, tetramethyl(3-(triethoxysilyl)propylazanediyl) bis(methylene) diphosphonate (TMSAP), is firstly synthesized and then incorporated into poly(methyl methacrylate) (PMMA) matrix through sol-gel method to produce organic-inorganic hybrids. The chemical structure of TMSAP was confirmed by Fourier transform infrared spectra, 1H nuclear magnetic resonance (NMR) and 31P NMR spectra. The hybrids obtained maintain relatively high transparency, and exhibit a significant improvement in thermal properties, mechanical performance and flame retardancy when compared to pure PMMA, including increased glass transition temperature (T g ) by 11.4 C, increased onset thermal degradation temperature (T0.1) by 82.6 C, increased half thermal degradation temperature (T0.5) by 42.0 C, increased hardness, increased limited oxygen index and decreased heat release rate. Morphological studies of hybrids by scanning electron microscopy (SEM) and 29Si MAS NMR suggest that cross-linked silica network is formed in the hybrids and the inorganic silica particles are distributed well in the polymer matrix. Thermal degradation behaviors investigated by thermogravimetric analysis and char structure analysis studied by SEM and X-ray photoelectron spectroscopy demonstrate the catalytic charring function of TMSAP, and synergistic effect between phosphorus, nitrogen and silicon element. The formation of network structure, homogeneous distribution of silica and the char formation during degradation play key roles in these property enhancements. Detailed mechanisms for these enhancements are proposed. © 2013 Springer Science+Business Media New York.
KW - Flame retardancy
KW - Mechanism
KW - Organic-inorganic hybrids
KW - Poly(methyl methacrylate)
KW - Sol-gel method
KW - Thermal property
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U2 - 10.1007/s10971-013-3236-x
DO - 10.1007/s10971-013-3236-x
M3 - RGC 21 - Publication in refereed journal
SN - 0928-0707
VL - 69
SP - 418
EP - 428
JO - Journal of Sol-Gel Science and Technology
JF - Journal of Sol-Gel Science and Technology
IS - 2
ER -