吸附
双酚A
化学工程
水溶液
共聚物
化学
多孔性
淀粉
苯乙烯
溶剂
吸附
高分子化学
材料科学
作者
Wenjing Yuan,Liqin Zhou,Zhaoqiang Zhang,Yunpan Ying,Weidong Fan,Kungang Chai,Ziqi Zhao,Zhongwei Tan,Fang Shen,Hongbing Ji
标识
DOI:10.1016/j.cej.2021.132350
摘要
• The porous and hydrophilic SGS-HPR was fabricated via feasible two-step strategy. • SGS-HPR 7 showed great ability for bisphenols removal. • Both static and dynamic adsorption studies verified recyclability of SGS-HPR 7 . • The synergistic effect of the hydrogen bond and π-π interactions were studied theoretically. Highly efficient remediation of bisphenols (BPs) contaminated wastewater by adsorption is intriguing but remains challenging. Herein, we present a starch-grafted-styrene hydrophilic porous resin (SGS-HPR) showing excellent BPs adsorption capacity, through simple graft copolymerization and then external knitting strategy. The typical influencing factors of graft copolymerization and external crosslinking processes were investigated systematically. A series of characterization experiments verified the successful fabrication of SGS-HPR and manifested that the optimum product, SGS-HPR 7 , possesses a hierarchical porous structure with strong hydrophilicity. The abundant presence of starch chain in SGS-HPR 7 , not only increased the hydrophilicity but also enhanced the adsorption affinity, making SGS-HPR 7 exhibit remarkable removal ability toward BPs. The adsorption performance of SGS-HPR 7 was studied systematically in static mode. The results showed that SGS-HPR 7 can adsorb BPs quickly with a stable ability irrespective of the varying aqueous environments. Besides, the continuous adsorption and regeneration experiments were conducted using bisphenol A (BPA) as the model BPs. The adsorbed BPA can be efficiently desorbed by ethanol elution, and the regenerated SGS-HPR 7 showed great recyclability. Interestingly, SGS-HPR 7 also retained the superior adsorption capacity and marvelous regeneration ability in the continuous adsorption experiments. Further, according to theoretical calculation studies, the hydrogen-bonding and π-π stacking interactions involved mechanism was uncovered clearly. Collectively, this work provides a new convenient strategy to fabricate new highly hydrophilic bio-based adsorbent for BPs removal.
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