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Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater

The uranium level in seawater is ≈1000 times as high as terrestrial ores and can provide potential near‐infinite fuel for the nuclear energy industry. However, it is still a significant challenge to develop high‐efficiency and low‐cost adsorbents for massively extracting uranium from seawater. Herei...

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Autores principales: Ma, Chunxin, Gao, Jinxiang, Wang, Dong, Yuan, Yihui, Wen, Jun, Yan, Bingjie, Zhao, Shilei, Zhao, Xuemei, Sun, Ye, Wang, Xiaolin, Wang, Ning
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662065/
https://www.ncbi.nlm.nih.gov/pubmed/31380182
http://dx.doi.org/10.1002/advs.201900085
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author Ma, Chunxin
Gao, Jinxiang
Wang, Dong
Yuan, Yihui
Wen, Jun
Yan, Bingjie
Zhao, Shilei
Zhao, Xuemei
Sun, Ye
Wang, Xiaolin
Wang, Ning
author_facet Ma, Chunxin
Gao, Jinxiang
Wang, Dong
Yuan, Yihui
Wen, Jun
Yan, Bingjie
Zhao, Shilei
Zhao, Xuemei
Sun, Ye
Wang, Xiaolin
Wang, Ning
author_sort Ma, Chunxin
collection PubMed
description The uranium level in seawater is ≈1000 times as high as terrestrial ores and can provide potential near‐infinite fuel for the nuclear energy industry. However, it is still a significant challenge to develop high‐efficiency and low‐cost adsorbents for massively extracting uranium from seawater. Herein, a simple and fast method through low‐energy consumption sunlight polymerization to direct fabrication of a poly(amidoxime) (PAO) hydrogel membrane, which exhibits high uranium adsorption capacity, is reported. This PAO hydrogel owns semi‐interpenetrating structure and a hydrophilic poly(acrylamide) 3D network of hydrogel which can disperse and fix PAOs well. As a result, the amidoxime groups of PAOs exhibit an outstanding uranium adsorption efficiency (718 ± 16.6 and 1279 ± 14.5 mg g(−1) of m (uranium)/m (PAO) in 8 and 32 ppm uranium‐spiked seawater, respectively) among reported hydrogel‐based adsorbents. Most importantly, U‐uptake capacity of this hydrogel can achieve 4.87 ± 0.38 mg g(−1) of m (uranium)/m (dry gel) just after four weeks within natural seawater. Furthermore, this hydrogel can be massively produced through low‐energy consumption and environmentally‐friendly sunlight polymerization. This work will provide a high‐efficiency and low‐cost adsorbent for massive uranium extraction from seawater.
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spelling pubmed-66620652019-08-02 Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater Ma, Chunxin Gao, Jinxiang Wang, Dong Yuan, Yihui Wen, Jun Yan, Bingjie Zhao, Shilei Zhao, Xuemei Sun, Ye Wang, Xiaolin Wang, Ning Adv Sci (Weinh) Communications The uranium level in seawater is ≈1000 times as high as terrestrial ores and can provide potential near‐infinite fuel for the nuclear energy industry. However, it is still a significant challenge to develop high‐efficiency and low‐cost adsorbents for massively extracting uranium from seawater. Herein, a simple and fast method through low‐energy consumption sunlight polymerization to direct fabrication of a poly(amidoxime) (PAO) hydrogel membrane, which exhibits high uranium adsorption capacity, is reported. This PAO hydrogel owns semi‐interpenetrating structure and a hydrophilic poly(acrylamide) 3D network of hydrogel which can disperse and fix PAOs well. As a result, the amidoxime groups of PAOs exhibit an outstanding uranium adsorption efficiency (718 ± 16.6 and 1279 ± 14.5 mg g(−1) of m (uranium)/m (PAO) in 8 and 32 ppm uranium‐spiked seawater, respectively) among reported hydrogel‐based adsorbents. Most importantly, U‐uptake capacity of this hydrogel can achieve 4.87 ± 0.38 mg g(−1) of m (uranium)/m (dry gel) just after four weeks within natural seawater. Furthermore, this hydrogel can be massively produced through low‐energy consumption and environmentally‐friendly sunlight polymerization. This work will provide a high‐efficiency and low‐cost adsorbent for massive uranium extraction from seawater. John Wiley and Sons Inc. 2019-04-04 /pmc/articles/PMC6662065/ /pubmed/31380182 http://dx.doi.org/10.1002/advs.201900085 Text en © 2019 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Communications
Ma, Chunxin
Gao, Jinxiang
Wang, Dong
Yuan, Yihui
Wen, Jun
Yan, Bingjie
Zhao, Shilei
Zhao, Xuemei
Sun, Ye
Wang, Xiaolin
Wang, Ning
Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title_full Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title_fullStr Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title_full_unstemmed Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title_short Sunlight Polymerization of Poly(amidoxime) Hydrogel Membrane for Enhanced Uranium Extraction from Seawater
title_sort sunlight polymerization of poly(amidoxime) hydrogel membrane for enhanced uranium extraction from seawater
topic Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662065/
https://www.ncbi.nlm.nih.gov/pubmed/31380182
http://dx.doi.org/10.1002/advs.201900085
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