State-Key Laboratory of Chemical Engineering and Shanghai Key Laboratory of Multiphase Materials Chemical Engineering, East China University of Science and Technology, Shanghai, 200237, P. R. China.
Macromol Rapid Commun. 2021 Feb;42(4):e2000635. doi: 10.1002/marc.202000635. Epub 2020 Dec 28.
Polyelectrolyte complex nanoparticles with integrated advances of coacervate complexes and nanomaterials have attracted considerable attention as soft templates and functional nano-carriers. Herein, a facile and robust strategy, namely electrostatic assembly directed polymerization (EADP), for efficient and scalable preparation of stable coacervate nanoparticles is presented. With homo-polyelectrolyte PAA (polyacrylic acid) as template and out of charge stoichiometry, the cationic monomers are polymerized together with cross-linkers, which creates coacervate nanoparticles featuring high stability against salt through one-pot synthesis. The particle size can be tuned by varying the cross-linker amount and salt concentrations during the polymerization and the composition of nanoparticles, as well as the corresponding properties can be regulated by combining different charged blocks from both strong and weak ionic monomers. The strategy can tolerate both high monomer concentrations and increased volume of up to l L, which is favorable for scaled-up preparations. Moreover, the coacervate nanoparticles can be freeze-dried to produce a product in powder form, which can be redispersed without any effect on the particle size and size distribution. Finally, the obtained nanoparticles loaded with enzyme and Au nanoparticles exhibit enhanced catalytic performance, demonstrating a great potential for exploring various applications of coacervate particles as soft and functional nano-carriers.
具有凝聚复合物和纳米材料综合优势的聚电解质复合物纳米粒子作为软模板和功能纳米载体引起了相当大的关注。本文提出了一种简便、稳健的策略,即静电组装定向聚合(EADP),用于高效、规模化制备稳定的凝聚纳米粒子。以同聚电解质 PAA(聚丙烯酸)为模板,并超出电荷化学计量比,将阳离子单体与交联剂一起聚合,通过一锅合成法制备出具有高盐稳定性的凝聚纳米粒子。通过聚合过程中改变交联剂用量和盐浓度以及纳米粒子的组成,可以调节粒径,并且可以通过组合来自强离子单体和弱离子单体的不同带电块来调节相应的性质。该策略可耐受高单体浓度和高达 1 L 的增加体积,有利于规模化制备。此外,凝聚纳米粒子可以冻干成粉末状产品,再分散时不会影响粒径和粒径分布。最后,负载酶和 Au 纳米粒子的所得纳米粒子表现出增强的催化性能,表明作为软功能纳米载体的凝聚粒子具有广泛的应用潜力。