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Introduction of pH-Sensitivity into Mechanically Strong Nanoclay Composite Hydrogels Based on N-Isopropylacrylamide

机译:将pH敏感性引入基于N-异丙基丙烯酰胺的机械强度高的纳米粘土复合水凝胶

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摘要

pH-sensitive nanoclay composite hydrogels based on N-isopropylacrylamide (NIPA) were synthesized by copolymerization with cationic and anionic comonomers. Laponite nanoclay particles served as multifunctional crosslinkers, producing hydrogels with exceptionally high mechanical strengths, as measured by elongation at break. Cationic copolymer gels based on NIPA and dimethylaminoethylmethacrylate were prepared by aqueous free radical polymerization, adopting a procedure reported by Haraguchi (Adv Mater 2002, 14, 1120–1124). Without modification, this technique failed to produce anionic copolymer gels of NIPA and methacrylic acid due to flocculation of clay particles. Three methods were conceived to incorporate acidic MAA into nanoclay hydrogels. First, NIPA was copolymerized with acidic comonomer under dilute conditions, producing hydrogels with good pH-sensitivity but weak mechanical characteristics. Second, NIPA was copolymerized with methyl methacrylate, which was then hydrolyzed to generate acid sidegroups, yielding hydrogels that were much stronger but less pH sensitive. Third, NIPA was copolymerized with an acid comonomer following modification of the nanoclay surface with pyrophosphate ions. The resulting hydrogels exhibited both strong pH-sensitivities at 37 °C and excellent tensile properties. Optical transparency changed during polymerization, depending on hydrophobicity of the components. This work increases the diversity and functionality of nanoclay hydrogels, which display certain mechanical advantages over conventionally crosslinked hydrogels.
机译:通过与阳离子和阴离子共聚单体共聚,合成了基于N-异丙基丙烯酰胺(NIPA)的pH敏感纳米粘土复合水凝胶。锂皂石纳米粘土颗粒用作多功能交联剂,可生产出具有极高机械强度的水凝胶(通过断裂伸长率测量)。通过水自由基聚合,采用原口(Adv Mater 2002,14,1,120-1124),通过水性自由基聚合制备了基于NIPA和甲基丙烯酸二甲基氨基乙基酯的阳离子共聚物凝胶。如果不进行修改,由于粘土颗粒的絮凝,该技术无法生产NIPA和甲基丙烯酸的阴离子共聚物凝胶。设想了三种将酸性MAA掺入纳米粘土水凝胶的方法。首先,在稀薄条件下将NIPA与酸性共聚单体共聚,制得具有良好pH敏感性但机械性能较弱的水凝胶。其次,将NIPA与甲基丙烯酸甲酯共​​聚,然后将其水解以生成酸侧基,得到的水凝胶要强得多,但对pH的敏感性较低。第三,在用焦磷酸根离子改性纳米粘土表面之后,使NIPA与酸共聚单体共聚。所得的水凝胶在37°C下显示出很强的pH敏感性和出色的拉伸性能。在聚合过程中,光学透明度根据组分的疏水性而变化。这项工作增加了纳米粘土水凝胶的多样性和功能性,与传统的交联水凝胶相比,它们显示出某些机械优势。

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