sustainable polymers
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Polymers ◽  
2021 ◽  
Vol 13 (23) ◽  
pp. 4091
Author(s):  
Anamaria Todea ◽  
Caterina Deganutti ◽  
Mariachiara Spennato ◽  
Fioretta Asaro ◽  
Guglielmo Zingone ◽  
...  

Azelaic acid is a dicarboxylic acid containing nine C atoms, industrially obtained from oleic acid. Besides its important properties and pharmacological applications, as an individual compound, azelaic acid has proved to be a valuable bio-based monomer for the synthesis of biodegradable and sustainable polymers, plasticizers and lubricants. This review discusses the studies and the state of the art in the field of the production of azelaic acid from oleic acid, the chemical and enzymatic synthesis of bio-based oligo and polyester and their properties, including biodegradability and biocompostability.


2021 ◽  
Author(s):  
Shaafique Chowdhury ◽  
Pamela Peralta-Yahya
Keyword(s):  

2021 ◽  
pp. 110799
Author(s):  
Florine Nonque ◽  
Antoine Benlahoues ◽  
Jules Audourenc ◽  
Audrey Sahut ◽  
René Saint-Loup ◽  
...  
Keyword(s):  

2021 ◽  
Vol 28 ◽  
pp. 102721
Author(s):  
Raynold Techie-Menson ◽  
Charles K. Rono ◽  
Anita Etale ◽  
Gift Mehlana ◽  
James Darkwa ◽  
...  

2021 ◽  
Vol 54 (18) ◽  
pp. 8257-8258
Author(s):  
Juan de Pablo ◽  
Marc A. Hillmyer
Keyword(s):  

2021 ◽  
Author(s):  
Juan de Pablo ◽  
Marc Hillmyer ◽  
Jeffrey Buenaflor ◽  
Daphne Chan ◽  
Josh Mysona ◽  
...  

Author(s):  
Martina Maria Calvino ◽  
Lorenzo Lisuzzo ◽  
Giuseppe Cavallaro ◽  
Giuseppe Lazzara ◽  
Stefana Milioto

AbstractIn this paper, films based on sustainable polymers with variable charge have been investigated by non-isothermal thermogravimetry in order to predict their lifetime, which is a key parameter for their potential use in numerous technological and biomedical applications. Specifically, chitosan has been selected as positively charged biopolymer, while alginate has been chosen as negatively charged biopolymer. Among non-ionic polymers, methylcellulose has been investigated. Thermogravimetric measurements at variable heating rates (5, 10, 15 and 20 °C min−1) have been performed for all the polymers to study their degradation kinetics by using isoconversional procedures combined with ‘Master plot’ analyses. Both integral (KAS and Starink methods) and differential (Friedman method) isoconversional procedures have shown that chitosan possesses the highest energetic barrier to decomposition. Based on the Master plot analysis, the decomposition of ionic polymers can be described by the R2 kinetic model (contracted cylindrical geometry), while the degradation of methylcellulose reflects the D2 mechanism (two-dimensional diffusion). The determination of both the decomposition mechanism and the kinetic parameters (activation energy and pre-exponential factor) has been used to determine the decay time functions of the several biopolymers. The obtained insights can be helpful for the development of durable films based on sustainable polymers with variable electrostatic characteristics. Graphical abstract


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