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Thermal and mechanical properties of nanocomposites based on polyethylene and Mg/Al hydrotalcite

Published online by Cambridge University Press:  14 April 2016

L.Y. Jaramillo
Affiliation:
Advanced Materials and Energy Research Group Instituto Tecnológico Metropolitano, Campus Fraternidad Calle 54A No 1-30 Medellín, Colombia. Advanced Materials Science Research Group Facultad de Ciencias, Universidad Nacional de Colombia Sede Medellín, Calle 59A No 63-20, Medellín, Colombia.
J.C. Posada-Correa
Affiliation:
Quality, Metrology and Manufacturing Research Group Instituto Tecnológico Metropolitano, Campus Robledo Calle 73 No 76ª-354 Medellín, Colombia.
E. Pabón-Gelves
Affiliation:
Advanced Materials Science Research Group Facultad de Ciencias, Universidad Nacional de Colombia Sede Medellín, Calle 59A No 63-20, Medellín, Colombia.
E. Ramos-Ramírez
Affiliation:
Chemistry Department, Exact and Natural Sciences Division Universidad de Guanajuato Noria Alta s/n, Col. Noria Alta, C.P. 36050, Guanajuato, Gto., México.
N.L. Gutiérrez-Ortega
Affiliation:
Civil Engineering Department Universidad de Guanajuato Juárez No. 77, Col. Centro, C.P. 36000, Guanajuato, Gto., México
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Abstract

In this work there was studied the effect of nano-Mg/Al hydrotalcite (NHT) as filler on maleic anhydride grafted linear low density polyethylene (LLDPE-g-MA). NHT was synthesized by the coprecipitation method with a ratio of Mg/Al=6 and nanocomposites were prepared using 1, 3 and 5 %wt of filler via melt-blending.

Morphological and structural analysis of NHT were performed and for nanocomposites, tensile tests and thermal properties were measured. Results showed that filler was well dispersed in the LLDPE matrix, mechanical properties were enhanced in most of the cases and thermal stability improvements were achieved in the nanocomposites.

Type
Articles
Copyright
Copyright © Materials Research Society 2016 

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References

REFERENCES

Hotta, S., Paul, D.R.. Polymer, 45, 22, (2004).10.1016/j.polymer.2004.08.059CrossRefGoogle Scholar
Costa, F.R., Abdel-Goad, M., Wagenknecht, U., Heinrich, G.. Polymer, 46, 12 (2005)10.1016/j.polymer.2005.02.027CrossRefGoogle Scholar
Velasco, J.I., Ardanuy, M., Antunes, M.. Advances in Polymer Nanocomposites: types and Applications, Chapter 4: Layered double hydroxides (LDHs) as functional fillers in polymer nanocomposites. Edited by: Gao, F.. (2012). pp 91130.Google Scholar
Costantino, U., Gallipoli, A., Nocchetti, M., Camino, G., Bellucci, F., Frache, A.. Pol. Deg, Stab. 90, (2005).10.1016/j.polymdegradstab.2005.05.019CrossRefGoogle Scholar
Osswald, T.A, Menges, G.. Material Science of Polymers for Engineers. 3rd ed. Munich: Hanser Publications, (2010).Google Scholar
Park, S.D, Todo, M, Arakawa, K, et al. Polymer, 47 (2006).Google Scholar
Dorigato, A,Pegoretti, A. Eng. Fract. Mech. 79, (2012).10.1016/j.engfracmech.2011.10.014CrossRefGoogle Scholar
Marega, C., Causin, V., Neppalli, R., Saini, R., Ferrara, G., Marigo, A. Expr. Pol. Let., 12, (2011).Google Scholar
Ahmed, S., Jones, F. R, J. Mat.Sci. 25, (1990).10.1007/BF00580110CrossRefGoogle Scholar
Pegoretti, A., Dorigato, A., Penati, A. Expr. Pol. Let., 1, (2007).Google Scholar
Chen, W., Qu, B. Journal of Materials Chemistry, 14, (2004).Google Scholar