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Tuning Smart Microgel Swelling and Responsive Behavior through Strong and Weak Polyelectrolyte Pair Assembly

机译:调整智能微凝胶肿胀并通过强和弱聚电解质对大会响应行

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摘要

The layer-by-layer (LbL) assembly of polyelectrolyte pairs on temperature and pH-sensitive cross-linked poly(N-isopropylacrylamide)-co-(methacrylic acid), poly(NIPAAm-co-MAA), microgels enabled a fine tuning of the gel swelling and responsive behavior according to the mobility of the assembled polyelectrolyte (PE) pair and the composition of the outermost layer. Microbeads with well-defined morphology were initially prepared by synthesis in supercritical carbon dioxide. Upon LbL assembly of polyelectrolytes, interactions between the multilayers and the soft porous microgel led to differences in swelling and thermoresponsive behavior. For the weak PE pairs, namely poly(L-lysine) / poly(L-glutamic acid) and poly(allylamine hydrochloride) / poly(acrylic acid), polycation-terminated microgels were less swollen and more thermoresponsive than native microgel; while polyanion-terminated microgels were more swollen and not significantly responsive to temperature, in a quasi-reversible process with consecutive PE assembly. For the strong PE pair, poly(diallyldimethylammonium chloride) / poly(sodium styrene sulfonate), the differences among polycation and polyanion-terminated microgels are not sustained after the first PE bilayer due to extensive ionic cross-linking between the polyelectrolytes. The tendencies across the explored systems became less noteworthy in solutions with larger ionic strength due to overall charge shielding of the polyelectrolytes and microgel. ATR FT-IR studies correlated the swelling and responsive behavior after LbL assembly on the microgels with the extent of H-bonding and alternating charge distribution within the gel. Thus, the proposed LbL strategy may be a simple and flexible way to engineer smart microgels in terms of size, surface chemistry, overall charge and permeability.
机译:聚电解质对温度和pH敏感的交联聚(N-异丙基丙烯酰胺)-CO-(甲基丙烯酸),聚(NIPAAM-CO-MAA)的层 - 逐层组件,使微凝块能够进行精细调整根据组装聚电解质(PE)对的迁移率和最外层的组成的凝胶溶胀和响应性。最初通过在超临界二氧化碳中的合成制备具有明确定义的形态学的微生物。在LBL组装到聚电解质的情况下,多层和软多孔微凝胶之间的相互作用导致溶胀和热响应行为的差异。对于弱PE对,即聚(L-赖氨酸)/聚(L-谷氨酸)和聚(盐酸盐酸盐)/聚(丙烯酸),聚丙烯封端的微凝胶比天然微凝胶溶胀较小,热响应性更高;在具有连续PE组件的准可逆过程中,聚阴离子终止的微凝胶更溶胀并且没有显着响应于温度。对于强度对,聚(二咪啶甲基氯化铵)/聚(苯乙烯磺酸钠),由于聚电解质之间的广泛离子交联,聚阳离子和聚阴离子封端的微凝胶的差异在第一PE双层之后不持续。由于聚电解质和微凝胶的总电荷屏蔽,探索系统的趋势在具有较大离子强度的解决方案中不太值得注意。 ATR FT-IR研究与LBL组装在微凝胶中的肿胀和响应性行为相关,具有凝胶内的H键合和交替电荷分布的程度。因此,所提出的LBL策略可以是在尺寸,表面化学,整体电荷和渗透率方面的工程师智能微凝胶的简单而灵活的方式。

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