TY - JOUR
T1 - Solar driven enhanced adsorption of radioactive Cs+ and Sr2+ from nuclear wastewater by chitosan-based aerogel embedded with prussian blue analog
AU - Yang, Na
AU - Guo, Xu
AU - Yu, Jing
AU - Liu, Qi
AU - Liu, Jingyuan
AU - Zhu, Jiahui
AU - Chen, Rongrong
AU - Wang, Jun
N1 - Publisher Copyright:
© 2024
PY - 2025/3/5
Y1 - 2025/3/5
N2 - The rational use of solar energy to achieve photothermal conversion is an attractive strategy to promote the efficient removal of radioactive Cs+ and Sr2+ from nuclear wastewater. Herein, a photothermal adsorbent of composite aerogel with three-dimensional porous structure is fabricated by integrating prussian blue analogues (PBAs) and straw biochar into the chitosan (CS) and waste leather scrap hydrolysate (WLSH) aerogel matrix (CS/WLSH/C/PBAs). The local heating effect generated by CS/WLSH/C/PBAs aerogel induce to generate steam, accelerating the enrichment of Cs+ and Sr2+ in the solution, which increase their interaction with the CS/WLSH/C/PBAs and improves their adsorption rates and capacities. Under simulated sunlight, the adsorption equilibrium times for Cs+ and Sr2+ by CS/WLSH/C/PBAs are shortened from 5 h in the dark condition to 2 h, with maximum adsorption capacities of 156.0 and 95.1 mg/g for Cs+ and Sr2+, respectively. Meanwhile, the CS/WLSH/C/PBAs aerogel also exhibits excellent reusability. Notably, the Cs+ and Sr2+ still can be efficiently removed in simulated seawater. Encouragingly, the CS/WLSH/C/PBAs aerogel also exhibits excellent adsorption properties for dyes and oils. This work provides insights for the design of multifunctional and efficient composite adsorbents, and paving a promising way for enhancing the adsorption of Cs+ and Sr2+ through solar energy.
AB - The rational use of solar energy to achieve photothermal conversion is an attractive strategy to promote the efficient removal of radioactive Cs+ and Sr2+ from nuclear wastewater. Herein, a photothermal adsorbent of composite aerogel with three-dimensional porous structure is fabricated by integrating prussian blue analogues (PBAs) and straw biochar into the chitosan (CS) and waste leather scrap hydrolysate (WLSH) aerogel matrix (CS/WLSH/C/PBAs). The local heating effect generated by CS/WLSH/C/PBAs aerogel induce to generate steam, accelerating the enrichment of Cs+ and Sr2+ in the solution, which increase their interaction with the CS/WLSH/C/PBAs and improves their adsorption rates and capacities. Under simulated sunlight, the adsorption equilibrium times for Cs+ and Sr2+ by CS/WLSH/C/PBAs are shortened from 5 h in the dark condition to 2 h, with maximum adsorption capacities of 156.0 and 95.1 mg/g for Cs+ and Sr2+, respectively. Meanwhile, the CS/WLSH/C/PBAs aerogel also exhibits excellent reusability. Notably, the Cs+ and Sr2+ still can be efficiently removed in simulated seawater. Encouragingly, the CS/WLSH/C/PBAs aerogel also exhibits excellent adsorption properties for dyes and oils. This work provides insights for the design of multifunctional and efficient composite adsorbents, and paving a promising way for enhancing the adsorption of Cs+ and Sr2+ through solar energy.
KW - Adsorption
KW - Chitosan aerogel
KW - Cs and Sr
KW - Photothermal conversion
KW - Prussian blue analog
UR - https://www.scopus.com/pages/publications/85212579505
U2 - 10.1016/j.jhazmat.2024.136955
DO - 10.1016/j.jhazmat.2024.136955
M3 - Article
C2 - 39718081
AN - SCOPUS:85212579505
SN - 0304-3894
VL - 485
JO - Journal of Hazardous Materials
JF - Journal of Hazardous Materials
M1 - 136955
ER -