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Fibrillation of chain branched poly (lactic acid) with improved blood compatibility and bionic structureLi, Z., Zhao, X., Ye, L., Coates, Philip D., Caton-Rose, Philip D., Martyn, Michael T. 25 May 2015 (has links)
Yes / Highly-oriented poly (lactic acid) (PLA) with bionic fibrillar structure and micro-grooves was fabricated through solid hot drawing technology for further improving the mechanical properties and blood biocompatibility of PLA as blood-contacting medical devices. In order to enhance the melt strength and thus obtain high orientation degree, PLA was first chain branched with pentaerythritol polyglycidyl ether (PGE). The branching degree as high as 12.69 mol% can be obtained at 0.5 wt% PGE content. The complex viscosity, elastic and viscous modulus for chain branched PLA were improved resulting from the enhancement of molecular entanglement, and consequently higher draw ratio can be achieved during the subsequent hot stretching. The stress-induced crystallization of PLA occurred during stretching, and the crystal structure of the oriented PLA can be attributed to the α′ crystalline form. The tensile strength and modulus of PLA were improved dramatically by drawing. Chain branching and orientation could significantly enhance the blood compatibility of PLA by prolonging clotting time and decreasing hemolysis ratio, protein adsorption and platelet activation. Fibrous structure as well as micro-grooves can be observed for the oriented PLA which were similar to intimal layer of blood vessel, and this bionic structure was considered to be beneficial to decrease the activation and/or adhesion of platelets.
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High orientation of long chain branched poly (lactic acid) with enhanced blood compatibility and bionic structureLi, Z., Ye, L., Zhao, X., Coates, Philip D., Caton-Rose, Philip D., Martyn, Michael T. 20 January 2016 (has links)
Yes / Highly-oriented poly (lactic acid) (PLA) with bionic micro-grooves was
fabricated through solid hot drawing technology for further improving the mechanical
properties and blood biocompatibility of PLA. In order to enhance the melt strength
and thus obtain high orientation degree, long chain branched PLA (LCB-PLA) was
prepared at first through a two-step ring-opening reaction during processing. Linear
viscoelasticity combined with branch-on-branch (BOB) model was used to predict
probable compositions and chain topologies of the products, and it was found that the
molecular weight of PLA increased and topological structures with star like chain
with three arms and tree-like chain with two generations formed during reactive
processing, and consequently draw ratio as high as1200% can be achieved during the
subsequent hot stretching. With the increase of draw ratio, the tensile strength and
orientation degree of PLA increased dramatically. Long chain branching and
orientation could significantly enhance the blood compatibility of PLA by prolonging
clotting time and decreasing platelet activation. Micro-grooves can be observed on the
surface of the oriented PLA which were similar to the intimal layer of blood vessel,
and such bionic structure resulted from the formation of the oriented shish kebab-like
crystals along the draw direction.
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