吸附
小提琴手
共价键
离子键合
聚合物
材料科学
化学工程
多孔性
聚电解质
芘
密度泛函理论
共轭体系
盐(化学)
高分子化学
无机化学
离子
离子液体
化学
聚电解质吸附
有机化学
选择性吸附
悬挂(拓扑)
形态学(生物学)
作者
Jerk‐Sheuan Wong,Mahmoud Younis,Pei‐Cih Hu,Cheng-Yeh Hsin,Hongta Yang,Po-Hsun Chen,Po-Liang Liu,Yu-En Liang,Yi-Tsu Chan,Rong Ho Lee,Jerk‐Sheuan Wong,Mahmoud Younis,Pei‐Cih Hu,Cheng-Yeh Hsin,Hongta Yang,Po-Hsun Chen,Po-Liang Liu,Yu-En Liang,Yi-Tsu Chan,Rong Ho Lee
标识
DOI:10.1002/adem.202501601
摘要
The well‐defined porosity architectures and distinct charge characteristics of ionic covalent organic polymers (ICOPs) have garnered significant attention as promising candidates for drug delivery, adsorption, separation, and gas collection and storage applications. This study reports the synthesis of two novel ICOPs, TPE‐COP and PY‐COP, based on tetraphenylethene and pyrene cores, respectively, with viologen serving as the conjugated bridge. To complement the experimental findings and provide microscopic insights into the adsorption mechanism, density functional theory calculations are performed. Results indicate that the PY‐COP model exhibits a more planar structure compared to TPE‐COP, explaining the observed morphological variations: spherical for TPE‐COP and stacked morphology for PY‐COP. TPE‐COP exhibits markedly stronger stabilization toward oxoanions. Saturated adsorption capacities are determined for both ICOPs against selected anionic pollutants, demonstrating competitive performance compared to existing adsorbents. For KMnO 4 , TPE‐COP and PY‐COP demonstrate capacities of 0.77 and 0.35 g MnO 4 − g −1 , respectively. Similarly, for Na 2 Cr 2 O 7 , the saturated adsorption capacities are 0.17 g Cr 2 O 7 2− g −1 for TPE‐COP and 0.06 g Cr 2 O 7 2− g −1 for PY‐COP. These results demonstrate the superior adsorption performance of TPE‐COP compared to PY‐COP, highlighting the influence of structural design on adsorption efficacy.
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