Li, D., Liao, Y., Chen, Z., Chang, X., Zhang, X., Chen, C., Cui, C., Zhang, Z., Muhire, C., Tang, W., Zhang, D., Li, J., & Xu, X. (2023). A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater. Journal of Materials Chemistry A, 11(19), 10384-10395. https://doi.org/10.1039/d3ta01235b
Li, Dagang ; Liao, Yaozu ; Chen, Zheng et al. / A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater. In: Journal of Materials Chemistry A. 2023 ; Vol. 11, No. 19. pp. 10384-10395.
@article{c43d71e3b383412f9dcd9d288bd388f2,
title = "A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater",
abstract = "Large-scale and rapid extraction of uranium from seawater are promising for overcoming the challenge of supply interruption to achieve sustainable nuclear energy production. However, existing uranium adsorbents are limited by bacterial contamination or low seawater flux for long-term operation. Inspired by the efficient nutrient absorption by animal small intestine folds, we have developed a continuous 3D intestine-fold-like hierarchical porous uranium adsorbent using a one-step cryo-polymerization technique. It shows 10 times higher uranium adsorption capacity than the same material without the intestine-fold-like structure. The continuous supermacro pores (10-100 μm) in the adsorbent provide rapid flow channels for seawater; the micropores (∼1 μm) in the pore walls provide a Schiff base and amidoxime sites for efficient uranium capture. Its functional and high-strength double network polymer chains show a compressive strength of 1.4-3.3 MPa. Within a period of seven days in natural seawater, the uranium adsorption rate was as high as 0.97 mg (g d)−1. The presence of an antibacterial Schiff base allows the adsorbent to achieve a uranium adsorption amount of 10.45 ± 0.46 mg g−1 after 30 days in natural seawater. Importantly, the cryo-polymerization technique proposed in this work simultaneously achieves the formation of hierarchical pores and is easily scalable for large-area preparation, providing a reliable adsorbent for seawater uranium extraction and contributing to the sustainable development of nuclear energy.",
author = "Dagang Li and Yaozu Liao and Zheng Chen and Xixin Chang and Xu Zhang and Chongcheng Chen and Chang Cui and Zilei Zhang and Constantin Muhire and Weiwu Tang and Dongxiang Zhang and Jinying Li and Xiyan Xu",
note = "Publisher Copyright: {\textcopyright} 2023 The Royal Society of Chemistry.",
year = "2023",
month = apr,
day = "20",
doi = "10.1039/d3ta01235b",
language = "English",
volume = "11",
pages = "10384--10395",
journal = "Journal of Materials Chemistry A",
issn = "2050-7488",
publisher = "Royal Society of Chemistry",
number = "19",
}
Li, D, Liao, Y, Chen, Z, Chang, X, Zhang, X, Chen, C, Cui, C, Zhang, Z, Muhire, C, Tang, W, Zhang, D, Li, J & Xu, X 2023, 'A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater', Journal of Materials Chemistry A, vol. 11, no. 19, pp. 10384-10395. https://doi.org/10.1039/d3ta01235b
A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater. / Li, Dagang; Liao, Yaozu; Chen, Zheng et al.
In:
Journal of Materials Chemistry A, Vol. 11, No. 19, 20.04.2023, p. 10384-10395.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater
AU - Li, Dagang
AU - Liao, Yaozu
AU - Chen, Zheng
AU - Chang, Xixin
AU - Zhang, Xu
AU - Chen, Chongcheng
AU - Cui, Chang
AU - Zhang, Zilei
AU - Muhire, Constantin
AU - Tang, Weiwu
AU - Zhang, Dongxiang
AU - Li, Jinying
AU - Xu, Xiyan
N1 - Publisher Copyright:
© 2023 The Royal Society of Chemistry.
PY - 2023/4/20
Y1 - 2023/4/20
N2 - Large-scale and rapid extraction of uranium from seawater are promising for overcoming the challenge of supply interruption to achieve sustainable nuclear energy production. However, existing uranium adsorbents are limited by bacterial contamination or low seawater flux for long-term operation. Inspired by the efficient nutrient absorption by animal small intestine folds, we have developed a continuous 3D intestine-fold-like hierarchical porous uranium adsorbent using a one-step cryo-polymerization technique. It shows 10 times higher uranium adsorption capacity than the same material without the intestine-fold-like structure. The continuous supermacro pores (10-100 μm) in the adsorbent provide rapid flow channels for seawater; the micropores (∼1 μm) in the pore walls provide a Schiff base and amidoxime sites for efficient uranium capture. Its functional and high-strength double network polymer chains show a compressive strength of 1.4-3.3 MPa. Within a period of seven days in natural seawater, the uranium adsorption rate was as high as 0.97 mg (g d)−1. The presence of an antibacterial Schiff base allows the adsorbent to achieve a uranium adsorption amount of 10.45 ± 0.46 mg g−1 after 30 days in natural seawater. Importantly, the cryo-polymerization technique proposed in this work simultaneously achieves the formation of hierarchical pores and is easily scalable for large-area preparation, providing a reliable adsorbent for seawater uranium extraction and contributing to the sustainable development of nuclear energy.
AB - Large-scale and rapid extraction of uranium from seawater are promising for overcoming the challenge of supply interruption to achieve sustainable nuclear energy production. However, existing uranium adsorbents are limited by bacterial contamination or low seawater flux for long-term operation. Inspired by the efficient nutrient absorption by animal small intestine folds, we have developed a continuous 3D intestine-fold-like hierarchical porous uranium adsorbent using a one-step cryo-polymerization technique. It shows 10 times higher uranium adsorption capacity than the same material without the intestine-fold-like structure. The continuous supermacro pores (10-100 μm) in the adsorbent provide rapid flow channels for seawater; the micropores (∼1 μm) in the pore walls provide a Schiff base and amidoxime sites for efficient uranium capture. Its functional and high-strength double network polymer chains show a compressive strength of 1.4-3.3 MPa. Within a period of seven days in natural seawater, the uranium adsorption rate was as high as 0.97 mg (g d)−1. The presence of an antibacterial Schiff base allows the adsorbent to achieve a uranium adsorption amount of 10.45 ± 0.46 mg g−1 after 30 days in natural seawater. Importantly, the cryo-polymerization technique proposed in this work simultaneously achieves the formation of hierarchical pores and is easily scalable for large-area preparation, providing a reliable adsorbent for seawater uranium extraction and contributing to the sustainable development of nuclear energy.
UR - http://www.scopus.com/inward/record.url?scp=85158055611&partnerID=8YFLogxK
U2 - 10.1039/d3ta01235b
DO - 10.1039/d3ta01235b
M3 - Article
AN - SCOPUS:85158055611
SN - 2050-7488
VL - 11
SP - 10384
EP - 10395
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 19
ER -
Li D, Liao Y, Chen Z, Chang X, Zhang X, Chen C et al. A 3D hierarchical porous adsorbent constructed by cryo-polymerization for ultrafast uranium harvesting from seawater. Journal of Materials Chemistry A. 2023 Apr 20;11(19):10384-10395. doi: 10.1039/d3ta01235b