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A comprehensive single‐particle model for solid‐state polymerization of poly( L ‐lactic acid)
Author(s) -
Katiyar Vimal,
Shaama Mallikarjun Sharada,
Nanavati Hemant
Publication year - 2011
Publication title -
journal of applied polymer science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.575
H-Index - 166
eISSN - 1097-4628
pISSN - 0021-8995
DOI - 10.1002/app.34061
Subject(s) - prepolymer , polymerization , materials science , amorphous solid , lactic acid , particle (ecology) , polymer chemistry , kinetics , volume (thermodynamics) , solid state , chemical engineering , thermodynamics , polymer , chemistry , composite material , crystallography , physics , oceanography , quantum mechanics , biology , bacteria , engineering , polyurethane , genetics , geology
We propose here, a comprehensive model for the solid‐state polymerization (SSP) of a low to moderate molecular weight (MW) prepolymer of lactic acid, to produce high MW poly( L ‐lactic acid) (PLLA). The reactions are rationally assumed to occur only in the amorphous region, and effective concentrations of end groups, vary with crystalinity, X c , during SSP. We estimate byproduct diffusivities, D , using free volume theory. The effects of various parameters on the SSP of PLLA prepolymer have been examined with respect to the optimum MW, X c and D . We introduce self‐consistently, scaling factors of ∼ 0.27, in the experimental procedure, to determine via 19 F‐NMR, concentrations of the end groups, after converting them to fluorinated ester groups. The relevant reaction rate constants are obtained by fitting to early time data from representative SSP experiments at 150°C, under high vacuum, on PLLA prepolymer powder (i.e., spherical geometry) of number average MW, M n 0 ∼ 10,200 Da, which attains M n ∼ 150,000 Da, via SSP. The subsequent successful comparison of the model predictions with experimental data throughout the entire SSP duration indicates that the model is comprehensive and accounts for all the relevant phenomena occurring during the SSP to synthesize high MW PLLA. © 2011 Wiley Periodicals, Inc. J Appl Polym Sci, 2011

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