4.6 Article

Plasticization of poly(3-hydroxybutyrate) with triethyl citrate: Thermal and mechanical properties, morphology, and kinetics of crystallization

期刊

JOURNAL OF APPLIED POLYMER SCIENCE
卷 138, 期 10, 页码 -

出版社

WILEY
DOI: 10.1002/app.49990

关键词

biopolymers and renewable polymers; crystallization; mechanical properties; morphology; thermal properties

资金

  1. Capes [001]
  2. CNPq [444392/2014-9]
  3. FAPESP [2010/17804-7, 2015/25406-5]

向作者/读者索取更多资源

In this study, PHB and TEC were blended to investigate the effects of TEC as a plasticizer on the properties of PHB. Increasing the mass fraction of TEC led to gradual changes in mechanical, thermal, and morphological properties of PHB, with TEC acting as an efficient plasticizer. The presence of TEC reduced the glass transition and melting temperatures of PHB, expanded the processing window of temperature, and influenced the crystallization kinetics and morphology of PHB.
Poly(3-hydroxybutyrate) (PHB), is one important biopolymer and a promising alternative to petroleum-based plastics. In this article, formulations of PHB and triethyl citrate (TEC) as plasticizer were prepared by melt extrusion. The effect of TEC on the mechanical, thermal, and morphological properties of PHB was investigated by tensile tests, impact resistance, dynamic-mechanical analysis, differential scanning calorimetry, polarized optical microscopy, and small- and wide-angle X-ray scattering. TEC acted as an efficient plasticizer for PHB, imparting gradual changes in the properties as the mass fraction of TEC increased. A reduction in the elastic modulus, an increase in the intensity of beta relaxation indicated a higher capacity of mechanical energy dissipation for the formulations containing higher mass fractions of TEC. TEC reduced its glass transition and melting temperatures, contributing to the increase of the processing window of the temperature and minimizing thermal degradation of PHB. TEC had a strong influence on the kinetics of crystallization, the morphology of the spherulites, and the crystalline structural parameters, such as long period, crystalline lamella, and interlamellar amorphous region thicknesses. Our study clarifies how the morphology of the PHB crystalline phase evolves in the presence of the plasticizer and with the time of crystallization.

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