自愈水凝胶
单体
材料科学
阳离子聚合
化学工程
聚合
聚合物
多孔性
过硫酸盐
共聚物
吸附
丙烯酰胺
流变学
原位聚合
自由基聚合
高分子化学
多孔介质
过硫酸铵
聚酰胺
环境友好型
污染物
有机化学
复合数
作者
Koushik Mahata,Nishikanta Singh,Durgesh Kumar Sinha,Swarup Maity,Sanjib Banerjee
标识
DOI:10.1002/adfm.202519401
摘要
ABSTRACT Spontaneous gelation, which involves in situ polymerization followed by network crosslinking of monomers under ambient or moderately elevated temperatures, occurring without the incorporation of external initiators or catalysts, is a major challenge in polymer chemistry and environmental science. In this work, we report the design and synthesis of amino acid‐derived porous hydrogels prepared via a spontaneous gelation without any external trigger, utilizing a glutamic acid‐derived monomer N‐methacryloyl‐(L)‐glutamic acid (MAGA) without the need for any additional crosslinking agents. Copolymers of MAGA with DMAEMA or DMA are synthesized through free‐radical polymerization and used to initiate gelation with acrylamide via persulfate activation, enabled by the N,N‐dimethyl functionalities in the copolymers. The resulting poly(DMAEMA‐ r ‐MAGA)/PAAm and poly(DMA‐ r ‐MAGA)/PAAm composite hydrogels demonstrated rapid gelation at ambient temperature, significant structural integrity, and tunable porous structures, as confirmed by rheological studies and electron microscopic imaging. These hydrogels exhibited excellent dye adsorption efficiency toward both anionic (Eosin B, Methyl Orange) and cationic (Rhodamine B) organic dyes. The system's ability to form defined shapes via mould printing, along with its bio‐derived fabrication, scalability, and performance, presents a promising route for future use in 3D‐printed devices and sustainable wastewater treatment. This catalyst‐free, crosslinker‐free, and ambient‐condition gelation approach marks a significant step toward environmental friendly hydrogel technologies.
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