Rheological, thermal and mechanical characterization of PBAT/PCL/Stearates blends
DOI:
https://doi.org/10.33448/rsd-v11i3.26630Keywords:
PBAT; PCL; Blends; Stearates; Degradation.Abstract
The slow degradation and the high environmental impact caused by inappropriate disposal of polymer products are the main factors prompting scientists to either substitute conventional polymers by biodegradable ones or to enhance biodegradation of short-lived polymer products, particularly those used in packaging. Polymer blends of conventional and biodegradable polymers is one of the alternative solutions found to improve mechanical properties and accelerate polymer degradation after disposal. This work investigates the effect of incorporating different metallic stearates (Zn and Mg) on the rheological, thermal and mechanical characteristics of 75PBAT/25PCL blends processed in an internal laboratory mixer. The results of torque rheometry suggest degradation during processing potentialized with the stearates incorporation, while that of DSC indicated that the crystallinity of the blends increased with the incorporation of additives. TG data showed a reduction in the thermal stability of the systems containing stearates. Incorporation of stearates resulted in strongly thermally degraded systems. Adding up to 0.25% of magnesium stearate to the blend 75PBAT/25PCL leads to a material that combines maintenance or improvement of properties combined with higher decomposition.
References
Abrusci, C., Pablos, J. L., Corrales, T., López-Marín, J., Marín, I. & Catalina, F. (2011). Biodegradation of photo-degraded mulching films based on polyethylenes and stearates of calcium and iron as pro-oxidant additives. International Biodeterioration & Biodegradation, 65, 451-459.
Almeida, T. G., Silva Neto, J. E., Costa, A. R. M., Silva, A. S., Carvalho, L. H. & Canedo, E. L. (2016). Degradation during processing in poly(butylene adipate-co-terephthalate) /vegetable fiber compounds estimated by torque rheometry. Polymer Testing; 55, 204– 211.
Almeida, T. G. Compósitos de poli(butileno adipato-co-tereftalato) e fibra de babaçu: efeito do processamento e do tipo e teor de carga. (2019). Tese (Doutorado em Ciência e Engenharia de Materiais) - Universidade Federal de Campina Grande (UFCG).
Alves, T. S., Silva Neto, J. E., Silva, S. M. L., Carvalho, L. H. & Canedo, E. L. (2016). Process simulation of laboratory internal mixers. Polymer Testing, 50, 94–100.
Ammala, A., Bateman, S., Dean, K., Petinakis, E., Sangwan, P., Wong, S., Yuan, Q., Yu, L., Patrick, C. & Leong, K. H. (2011). An overview of degradable and biodegradable polyolefins. Progress in Polymer Science, 36, 1015-1049.
Antunes, M. C., Agnelli, J. A. M., Babetto, A. S., Bonse, B. C. & Bettini, S. H. P. (2017) Abiotic thermo-oxidative degradation of high density polyethylene: Effect of manganese stearate concentration. Polymer Degradation and Stability, 143, 95-103.
Ayadi, F., Bliard, C. & Dole, P. (2011). Materials based on maize biopolymers: Effect of flour components on mechanical and thermal behavior. Starch‐Stärke, 604-615.
Bheemaneni, G., Saravana, S. & Kandaswamy, R. (2018). Processing and characterization of Poly (butylenesadipate-co-terephtalate)/Wollastonite Biocomposites for Medical Applications. Materials Today: Proceedings. 5, 1807-1816.
Canedo, E. L. Processamento de Polímeros no Misturador Interno de Laboratório. 2ª Edição. (2017). PPGCEMat-UFCG: Campina Grande, PB. [http://dx.doi.org/10.13140/RG.2.2.23644.64647].
Canedo, E. L. & Alves, T. S. (2015) Processamento de Polímeros no Misturador Interno de Laboratório. Workshop CFD/UFCG, Campina Grande. https ://doi.org/10.13140 /RG.2.1.1892.5921.
Cavalcante, M.P., Rodrigues, E. J. R. & Tavares, M. I. N. (2015). Crystallinity evaluation of polyhydroxybutyrate and polycaprolactone blends.
Cesario, L.V., Morais, D, D.S., Bardi, M. A. G. & Carvalho, L. H. (2018). Influência de estearatos metálicos nas propriedades do PBAT. Revista eletrônica de materiais e processos, 14, 184-189.
Cesario, L.V. Caracterização e degradação de filmes PBAT aditivados com estearatos metálicos. (2019). Dissertação (Mestrado em Engenharia de Materiais) – Universidade Federal de Campina Grande (UFCG).
Costa, A. R. M., Almeida, T. G., Silva, S. M. L., Carvalho, L. H. & Canedo, E. L. (2015). Chain extension in poly(butylene-adipate-terephthalate). Inline analysis in a laboratory internal mixer. Polymer Testing, 42, 115–121.
Duarte, I. S., Tavares, A. A., Lima, P. S., Andrade, D. L. A. C. S., Carvalho, L. H., Canedo, E. L. & Silva, S. M. L. (2016). Chain extension of virgin and recycled poly(ethylene terephthalate): effect of processing conditions and reprocessing. Polymer Degradation and Stability, 124, 26–34.
Godavitarne, C., Robertson, A., Peters, J. & Rogers, B. Biodegradable materials. (2017) Orthopaedics and Trauma, 31, 316-320.
Gönen, M., Egbuchunam, T. O., Balköse, D., İnal, F. & Ülkü, S. (2015). Preparation and characterization of magnesium stearate, cobalt stearate, and copper stearate and their effects on poly(vinyl chloride) dehydrochlorination. Journal of vinyl and additive technology, 21, 235–244.
Kijchavengkul, T., Auras, R., Rubino, M., Selke, S., Ngouajio, M. & Fernandez, R. T. (2010) Biodegradation and hydrolysis rate of aliphatic aromatic polyester. Polymer Degradation and Stability; 95, 2641-2647.
Konduri, M. K. R., Koteswarareddy, G., Kumar, D. B. R., Reddy, B. V. & Narasu, M. L. (2011). Effect of pro-oxidants on biodegradation of polyethylene (LDPE) by indigenous fungal isolate. Aspergillus oryzae. Journal of Applied Polymer Science;120, 3536-3545.
Marinho, V. A. D., Pereira, C. A. B., Vitorino, M. B. C., Silva, A. S., Carvalho, L. H. & Canedo, E. L. (2017). Degradation and recovery in poly(butylene adipate-co-terephthalate)/thermoplastic starch blends. Polymer Testing, 58, 166–172.
Matta, A. K., Rao, R. U., Suman, K. N. S. & Rambabu, V. (2014). Preparation and Characterization of Biodegradable PLA/PCL Polymeric Blends. Procedia Materials Science, 6, 1266-1270.
Miyata, T. & Masuko, T. (1997). Morphology of poly (L-lactide) solution-grown crystals. Polymer, 38, 4003-4009.
Pagno, V., M´odenes, A. N., Dragunski, D. C., Fiorentin-Ferrari, L. D., Caetano, J., Guellis, C., Gonçalves, B. C., Anjos, E. V., Pagno, F. & Martinelli, V. (2020). Heat treatment of polymeric PBAT/PCL membranes containing activated carbon from Brazil nutshell biomass obtained by electrospinning and applied in drug removal. Journal of Environmental Chemical Engineering; 8, 104159.
Reul, L. T. A., Pereira, C. A. B., Sousa, F. M., Santos, R. M., Carvalho, L. H. & Canedo, E. L. (2018). Polycaprolactone/babassu compounds: rheological, thermal, and morphological characteristics. Polymer Composites, 40, S1, E540-E549.
Rosa, D. S., Grillo, D., Bardi, M. A. G., Calil, M. R., Guedes, C. G. F., Ramires, E. C. & Frollini, E. (2009). Mechanical, thermal and morphological characterization of polypropylene/biodegradable polyester blends with additives. Polymer Testing, 28, 836–842.
Roy, P. K., Surekha, P., Rajagopal, C. & Choudhary, V. (2006). Effect of cobalt carboxylates on the photo-oxidative degradation of low-density polyethylene. Part-I. Polymer Degradation and Stability, 91, 1980-1988.
Sousa, F. M., Costa, A. R. M., Reul, L. T. A., Cavalcanti, F. B., Carvalho, L. H., Almeida, T. G. & Canedo, E. L. (2018). Rheological and thermal characterization of PCL/PBAT blends. Polymer Bulletin; 76,1573-1593.
Sousa, J. C., Carvalho, L. H., Almeida, Y. M. B. & Canedo, E. L. (2016) Crystallization and melting of poly (butylene adipate terephtalate) in biocomposites with coconut fiber. In: 3rd Brazilian conference on composite materials (BCCM3), Gramado, RS.
Stuart, B. (2005). Infrared Spectroscopy: Fundamentals and Applications. Chichester: Willey. ISBN 0470854278.
Wu, C. (2012). Characterization of cellulose acetate-reinforced aliphatic-aromatic copolyester composites. Carbohydrate Polymers, 87, 1249-1256.
Yang, B., Nar, M., Visi, D. K., Allen, M., Ayre, B., Webber, C. L., Lu, H. & D’Souza, N. A. (2014). Effects of chemical versus enzymatic processing of kenaf fibers on poly(hydroxybutyrate-co-valerate)/poly(butylene adipate-co-terephthalate) composite properties. Composites Part B: Engineering, 56, 926-933.
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Copyright (c) 2022 Jessé de Melo Silva; Fernanda Menezes de Sousa; Tatiara Gomes de Almeida; Marcelo Augusto Gonçalves Bardi; Laura Hecker de Carvalho
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