TY - JOUR
T1 - Confined synthesis of coordination frameworks inside double-network hydrogel for fabricating hydrogel-based water pipes with high adsorption capacity for cesium ions
AU - Zhao, Pan
AU - Zhang, Wei
AU - Kaneti, Yusuf Valentino
AU - Azhar, Alowasheeir
AU - Alshehri, Abdulmohsen Ali
AU - Yamauchi, Yusuke
AU - Hu, Ming
N1 - Publisher Copyright:
© 2018 The Chemical Society of Japan.
PY - 2018
Y1 - 2018
N2 - Hydrogel-based water pipes which can capture ionic contaminants are a promising solution for achieving efficient water treatment. However, the fabrication of such unique water pipes as an ion-harvester remains a challenge. In this work, we have fabricated this kind of water pipe through the confined synthesis of coordination frameworks inside a double-network PAAm/PAMPS hydrogel. The hydrogel could trigger the partial decomposition and reduction of K3 [Fe(CN) 6] upon heating. The released Fe3+/Fe2+ ions could react with the [Fe(CN)6]4-/ [Fe(CN)6]3-, finally producing Prussian Blue coordination frameworks inside the hydrogel. The resulting composite exhibited a high capacity for Cs+ ions (397 mg g-1 in 10minutes) by taking the coupling effect between the cation-selective hydrogel and the coordination frameworks. By shaping this composite into water pipes, Cs+ ions present in the contaminated water could be captured by the pipe wall. The proposed strategy will be useful, providing a potential method for fast treatment of aqueous nuclear waste.
AB - Hydrogel-based water pipes which can capture ionic contaminants are a promising solution for achieving efficient water treatment. However, the fabrication of such unique water pipes as an ion-harvester remains a challenge. In this work, we have fabricated this kind of water pipe through the confined synthesis of coordination frameworks inside a double-network PAAm/PAMPS hydrogel. The hydrogel could trigger the partial decomposition and reduction of K3 [Fe(CN) 6] upon heating. The released Fe3+/Fe2+ ions could react with the [Fe(CN)6]4-/ [Fe(CN)6]3-, finally producing Prussian Blue coordination frameworks inside the hydrogel. The resulting composite exhibited a high capacity for Cs+ ions (397 mg g-1 in 10minutes) by taking the coupling effect between the cation-selective hydrogel and the coordination frameworks. By shaping this composite into water pipes, Cs+ ions present in the contaminated water could be captured by the pipe wall. The proposed strategy will be useful, providing a potential method for fast treatment of aqueous nuclear waste.
KW - Metal adsorption
KW - Metal-organic frameworks
KW - Prussian Blue
UR - https://www.scopus.com/pages/publications/85053358255
U2 - 10.1246/bcsj.20180083
DO - 10.1246/bcsj.20180083
M3 - 文章
AN - SCOPUS:85053358255
SN - 0009-2673
VL - 91
SP - 1357
EP - 1363
JO - Bulletin of the Chemical Society of Japan
JF - Bulletin of the Chemical Society of Japan
IS - 9
ER -