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Article

Branched Copolymer Based on Glycerol, Ethylene Glycol and Adipic Acid, Linear Copolymer Based on Lactic Acid, Ethylene Glycol and Succinic Acid: Thermal and Microbial Degradation Comparatives Studies

1LCAE-URAC18: Laboratory of Applied Chemistry and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed the First – Oujda, Morocco

2Laboratory of Biochemistry and Biotechnology, Faculty of Sciences, Mohammed Premier University, Oujda, Morocco


Journal of Polymer and Biopolymer Physics Chemistry. 2018, Vol. 6 No. 1, 1-12
DOI: 10.12691/jpbpc-6-1-1
Copyright © 2018 Science and Education Publishing

Cite this paper:
A. Benarbia, A. Elidrissi, Asehraou Abdeslam. Branched Copolymer Based on Glycerol, Ethylene Glycol and Adipic Acid, Linear Copolymer Based on Lactic Acid, Ethylene Glycol and Succinic Acid: Thermal and Microbial Degradation Comparatives Studies. Journal of Polymer and Biopolymer Physics Chemistry. 2018; 6(1):1-12. doi: 10.12691/jpbpc-6-1-1.

Correspondence to: A.  Benarbia, LCAE-URAC18: Laboratory of Applied Chemistry and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed the First – Oujda, Morocco. Email: benarbia111@hotmail.com

Abstract

In this work, we aim compare the thermal and microbial degradation of two copolyesters a Branched copolyester Based on Glycerol, Ethylene Glycol and Adipic acid COP B [27] and a linear copolyester based on Lactic Acid, Ethylene Glycol and Succinic Acid COP L [2]. The quantitative and qualitative biodegradation phenomenon of the prepared copolyesters studied using two selected strains of Aspergillus sp S1 and Penicillium sp S2. The mechanism illustrating this process was proposed. The mean of the apparent activation energy (Ea) of COP L is biggest than noted for COP B. In case of the biomass growth obtained for Aspergillus sp S2 and Penicillium sp S1 a high increase of biomass was observed for COP B. The branched biodegradable copolyester exhibit potential to replace linear biodegradable copolyester.

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