Preparation and Crystallization Kinetics of New Structurally Well-Defined Star-Shaped Biodegradable Poly(l-lactide)s Initiated with Diverse Natural Sugar Alcohols
- 25 May 2005
- journal article
- research article
- Published by American Chemical Society (ACS) in Biomacromolecules
- Vol. 6 (4) , 2236-2247
- https://doi.org/10.1021/bm050213m
Abstract
This study presents syntheses, structural characterization, and crystallization kinetic investigation of new structurally well-defined star-shaped poly(l-lactide)s (PLLAs). First, a series of new 3- to 6-arm star-shaped PLLAs were synthesized through SnOct2 catalyzed ring-opening polymerization of (l)-lactide with natural sugar alcohols of glycerol, erythritol, xylitol, and sorbitol as the favorable initiators. Subsequently, their chemical structures were characterized by means of GPC, NMR, and viscometer with respect to the star-shaped structures, demonstrating the well-defined arm structures as evidenced on the g1/2/g‘ values, where g and g‘ denote the ratios of mean-square radius of gyration and intrinsic viscosity of a star-shaped polymer to those of a linear structural reference with similar absolute molecular weight. Furthermore, spherulite morphologies and growth rates were studied by a polarized microscopy (POM) for the synthesized star-shaped PLLAs with different molecular weights, and it was found that the more arms of a star-shaped PLLA finally resulted in a lower spherulite growth rate. With regard to the crystallization kinetics of these star-shaped PLLAs, isothermal and nonisothermal crystallization were examined by differential scanning calorimeter (DSC). It was found that Avrami exponent n values of isothermal crystallization were almost independent of the isothermal crystallization temperature Tc for different series of star-shaped PLLAs. In contrast, the values of Avrami exponent n were observed to strongly depend on the star-shaped structures with different arms, implying their distinct nucleation mechanisms, and the more arms of a star-shaped PLLA led to a slower isothermal crystallization rate. On the basis of a modified Avrami equation, new light was shed on the nonisothermal crystallization kinetics for the star-shaped PLLAs, and the activation energies were found to vary from 146.86 kJ/mol for the linear PLLA EG-3 to 221.23 kJ/mol of the star-shaped S-3, demonstrating much decreased crystallizabilities of star-shaped PLLAs with more arms.Keywords
This publication has 39 references indexed in Scilit:
- Isothermal and nonisothermal crystallization kinetics of a semicrystalline copolyterephthalamide based on poly(decamethylene terephthalamide)Journal of Applied Polymer Science, 2004
- Synthesis and Characterization of Star-Shaped Poly(l-lactide)s Initiated with Hydroxyl-Terminated Poly(Amidoamine) (PAMAM-OH) DendrimersChemistry of Materials, 2003
- Characterization of star-shaped poly(l-lactide)s by liquid chromatography at critical conditionsPolymer, 2003
- Synthesis and structural analysis of functionalized poly (ϵ‐caprolactone)‐based three‐arm star polymersJournal of Polymer Science Part A: Polymer Chemistry, 2002
- Synthesis of star‐shaped poly(D,L‐lactic acid‐alt‐glycolic acid)‐b‐poly(L‐lactic acid) with the poly(D,L‐lactic acid‐alt‐glycolic acid) macroinitiator and stannous octoate catalystJournal of Polymer Science Part A: Polymer Chemistry, 2001
- Synthesis of Star-Shaped Poly(ε-caprolactone)-b-poly(dl-lactic acid-alt-glycolic acid) with Multifunctional Initiator and Stannous Octoate CatalystMacromolecules, 2001
- Star-shaped poly[(trimethylene carbonate)-co-(ɛ-capro-lactone)] and its block copolymers with lactide/glycolide: synthesis, characterization and propertiesMacromolecular Chemistry and Physics, 2000
- Poly(lactides) with controlled molecular architecture initiated from hydroxyl functional dendrimers and the effect on the hydrodynamic volumeMacromolecular Chemistry and Physics, 1999
- Synthesis and degradability of a novel aliphatic polyester based on l-lactide and sorbitol: 3Polymer, 1996
- Regular star polymers with 64 and 128 arms. Models for polymeric micellesMacromolecules, 1993