Title of article :
Thermal and mechanical characteristics of poly( -lactic acid) nanocomposite scaffold
Author/Authors :
Jong-Hoon Lee، نويسنده , , Tae Gwan Park، نويسنده , , Ho Sik Park، نويسنده , , Doo-Sung Lee، نويسنده , , Young Kwan Lee، نويسنده , , Sung-Chul Yoon، نويسنده , , Jae-Do Nam، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2003
Pages :
6
From page :
2773
To page :
2778
Abstract :
Inorganic nanosized silicate nanoplatelets were incorporated into biodegradable poly( -lactic acid) (PLLA) for the purpose of tailoring mechanical stiffness of PLLA porous scaffold systems. Increasing the nucleation density around the foreign body surfaces, the montmorillonite (MMT) nanoplatelets modified with dimethyl dihydrogenated tallow ammonium cations decreased the glass transition temperature and the degree of PLLA crystallinity, which seemingly caused the accelerated biodegradation rate of PLLA nanocomposites due to the enhanced segmental mobility of backbone chains and the expanded amorphous region of PLLA matrix. The tensile modulus was increased from 121.2 MPa of pristine polymer scaffold to 170.1 MPa of MMT/PLLA nanocomposite scaffold (ca. 40% increment) by the addition of small amount of MMT platelets (5.79 vol%) acting as a mechanical reinforcement of polymer chains in the nanoscale molecular level. Overall, the nanotechnology used in this study may be applied to various scaffold systems of biodegradable polymers and hard/soft scaffold structures requiring critical control and design characteristics of mechanical stiffness and biodegradation rate.
Keywords :
modulus , Biodegradation rate , Montmorillonite , PLLA , Nanocomposite , Scaffold
Journal title :
Biomaterials
Serial Year :
2003
Journal title :
Biomaterials
Record number :
544910
Link To Document :
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