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Polymer nanocomposites using zinc aluminum and magnesium aluminum oleate layered double hydroxides: Effects of the polymeric compatibilizer and of composition on the thermal and fire properties of PP/LDH nanocomposites
Authors:Charles Manzi-Nshuti   Ponusa Songtipya   Evangelos Manias   Maria del Mar Jimenez-Gasco   Jeanne M. Hossenlopp  Charles A. Wilkie  
Affiliation:aDepartment of Chemistry and Fire Retardant Research Facility, Marquette University, 535 N 14th Street, Milwaukee, WI 53201-1881, USA;bPolymer Nanostructures Lab – Center for the Study of Polymeric Systems, and Department of Materials Science & Engineering, Penn State University, University Park, PA, USA;cPlant Pathology Department, Penn State University, University Park, PA, USA
Abstract:
A series of five oleate-containing layered double hydroxides with varied ratios of zinc to magnesium, i.e., with the general formula Zn2−yMgyAl(OH)6 [CH3(CH2)7CHdouble bond; length as m-dashCH(CH2)7COO]·nH2O, were synthesized and used to prepare nanocomposites of polypropylene (PP). The nanomaterials were characterized by elemental analysis, attenuated total reflection-infrared spectroscopy (ATR-IR), X-ray diffraction (XRD) and thermogravimetric analysis (TGA), while the composites were characterized by XRD, TGA, transmission electron microscopy (TEM) and cone calorimetry. The zinc-containing LDH showed better dispersion in the polymer at the micrometer level than did the magnesium-containing LDH while both are equally well-dispersed at the nanometer level. The magnesium-containing composites led to more thermally stable systems in TGA experiments, while the zinc systems gave greater reductions in heat release rate during combustion. Dispersion was also affected by the amount of PP-g-MA which was present. More PP-g-MA gave better dispersion and a significantly reduced peak heat release rate, i.e., enhanced fire performance.
Keywords:Nanocomposites   Layered double hydroxides   Polypropylene   Cone calorimetry
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