Evaluation of the Effect of Chemical or Enzymatic Synthesis Methods on Biodegradability of Polyesters

被引:0
作者
Laurent Goujard
Pierre-Jean Roumanet
Bruno Barea
Yann Raoul
Fabio Ziarelli
Jean Le Petit
Nathalie Jarroux
Elisée Ferré
Philippe Guégan
机构
[1] Aix-Marseille University,IMBE, UMR CNRS
[2] University of Evry Val d’Essone, IRD 7263, Faculty of Saint
[3] SUPAGRO/INRA – UMRIATE 1208,Jérôme, Case 452
[4] ONIDOL,Team of Material Polymers of Interfaces, LAMB, CNRS UMR 8587
[5] Université Aix-Marseille,CIRAD
[6] UPMC University Paris,Lipotechnie
[7] Chimie des Polymères,CNRS
来源
Journal of Polymers and the Environment | 2016年 / 24卷
关键词
Chemical polyesters; Enzymatic polyesters; Biodegradability;
D O I
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中图分类号
学科分类号
摘要
This work compares the biodegradability of polyesters produced by an esterification reaction between glycerol and oleic di-acid (D 18:1) issued from green chemical pathways, via either classical thermo-chemical methods, or an enzymatic method using the immobilized lipase of Candida antartica B (Novozym 435). An elastomeric polymer synthesized by enzymatic catalysis is more biodegradable than an elastomeric thermo-chemical polyester synthesized by a standard chemical procedure. This difference lies in percentage of the dendritic motifs, in values of the degree of substitution, and certainly in cross-links inducing an hyper-branched structure less accessible to the lipolytic enzymes in a waste treatment plant. However, when the elastomeric polymer synthesized by enzymatic catalysis is processed at high temperature as required for certain industrial applications, it presents an identical rate of biodegradation than the chemical polyester. The advantages of the thermo-chemical methods are greater speed and lower cost. Enzymatic synthesis appears be suited to producing polyesters, devoid of metallic catalysts, which must be used without processing at high temperature to keep a high biodegradability.
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页码:64 / 71
页数:7
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共 125 条
[1]  
Nair LS(2007)undefined Prog Polym Sci 32 762-798
[2]  
Laurencin CT(1995)undefined Polym Degrad Stab 48 275-289
[3]  
Weyland M(2003)undefined Polym Degrad Stab 80 39-43
[4]  
Daro A(2006)undefined Polym Degrad Stab 91 1496-1503
[5]  
David C(2004)undefined Polym Degrad Stab 86 105-114
[6]  
Jakubowicz I(2004)undefined J Macromol Sci 44 231-274
[7]  
Koutny M(2011)undefined Green Chem 13 1061-1083
[8]  
Sancelme M(2007)undefined Biotechnol Adv 25 148-175
[9]  
Dabin C(1998)undefined Polym Degrad Stab 59 145-152
[10]  
Pichon N(2003)undefined Adv Drug Deliv Rev 55 585-609