4.6 Article

Stereoselective ring-opening polymerization of a racemic lactide by using achiral salen- and homosalen-aluminum complexes

Journal

CHEMISTRY-A EUROPEAN JOURNAL
Volume 13, Issue 16, Pages 4433-4451

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.200601308

Keywords

aluminum; homogeneous catalysis; lactides; polymers; ring-opening polymerization

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Highly isotactic polylactide or poly(lactic acid) is synthesized in a ring-opening polymerization (ROP) of racemic lactide with achiral salen- and homosalen-aluminum complexes (salenH(2)=NN'-bis(salicylidene)ethylene-1,2-diamine; homosalenH(2) = NN'bis(salicylidene)trimethylene-1,3-diamine). A systematic exploration of ligands demonstrates the importance of the steric influence of the Schiff base moiety on the degree of isotacticity and the backbone for high activity. The complexes prepared in situ are pure enough to apply to the polymerizations without purification. The crystal structures of the key complexes are elucidated by X-ray diffraction, which confirms that they are chiral. However, analysis of the H-1 and C-13 NMR spectra unambiguously demonstrates that their conformations are so flexible that the chiral environment of the complexes cannot be maintained in solution at 25 degrees C and that the complexes are achiral under the polymerization conditions. The flexibility of the backbone in the propagation steps is also documented. Hence, the isotacticity of the polymer occurs due to a chain-end control mechanism. The highest reactivity in the present system is obtained with the homosalen ligand with 2,2-dimethyl substituents in the backbone (ArCH=NCH2CMe2CH2N=CHAr), whereas tBuMe(2)Si substituents at the 3-positions of the salicylidene moieties lead to the highest selectivity (P-meso = 0.9(g); T-m=210 degrees C). The ratio of the rate constants in the ROPs of racemic lactide and L-lactide is found to correlate with the stereoselectivity in the present system. The complex can be utilized in bulk polymerization, which is the most attractive in industry, although with some loss of stereoselectivity at high temperature, and the afforded polymer shows a higher melting temperature (P-meso =0-9(2), T-m, up to 189 degrees C) than that of homochiral poly(L-lactide) (T-m = 162-180 degrees C). The livingness of the bulk polymerization at 130 degrees C is maintained even at a high conversion (97-98%) and for an extended polymerization time (1-2 h).

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