Department of Chemistry and Institute of Physical Science, Chonbuk National University, Jeon-Ju, Jeollabuk-do, 54869, Korea.
Center for Greenhouse Gas Resource, Korea Research Institute of Chemical Technology, Yuseong-gu, Daejeon, 34114, Korea.
ChemSusChem. 2017 Sep 22;10(18):3529-3533. doi: 10.1002/cssc.201700873. Epub 2017 Jun 29.
Mechanochemical polymerization of lactide is carried out by using ball milling. Mechanical energy from collisions between the balls and the vessel efficiently promotes an organic-base-mediated metal- and solvent-free solid-state polymerization. Investigation of the parameters of the ball-milling synthesis revealed that the degree of lactide ring-opening polymerization could be modulated by the ball-milling time, vibration frequency, mass of the ball media, and liquid-assisted grinding. Liquid-assisted grinding was found to be an especially important factor for achieving a high degree of mechanochemical polymerization. Although polymer-chain scission from the strong collision energy prevented mechanical-force-driven high-molecular-weight polymer synthesis, the addition of only a small amount of liquid enabled sufficient energy dissipation and poly(lactic acid) was thereby obtained with a molecular weight of over 1×10 g mol .
采用球磨法进行丙交酯的机械聚合。球与容器之间的碰撞产生的机械能有效地促进了有机碱介导的金属和无溶剂固态聚合。对球磨合成参数的研究表明,丙交酯开环聚合的程度可以通过球磨时间、振动频率、球介质的质量和液辅助研磨来调节。液辅助研磨被发现是实现高程度机械聚合的一个特别重要的因素。虽然来自强碰撞能的聚合物链断裂阻止了机械力驱动的高分子量聚合物合成,但只需添加少量液体就能实现足够的能量耗散,从而获得分子量超过 1×10 g/mol 的聚乳酸。