吸附
铀
化学工程
咪唑酯
水溶液
纳米片
材料科学
X射线光电子能谱
萃取(化学)
吸热过程
海水
沸石咪唑盐骨架
朗缪尔吸附模型
无机化学
比表面积
化学
复合数
微型多孔材料
金属
金属有机骨架
核化学
动力学
作者
Nijuan Liu,Yuanzhuo Li,Nana Wang,Fupeng Jin,Duoqiang Wang,Ruijuan Wang,Hongping Zhang,Hao Liang,Ruibin Guo,Wei Tian,Zunli Mo
标识
DOI:10.1021/acsanm.5c04330
摘要
The extraction of uranium from seawater is crucial for the advancement of sustainable energy development, driving urgent demands for high-performance adsorbents. Herein, a composite adsorbent was engineered based on MXene nanosheets. To address the self-stacking issue of the nanosheets, polyacrylamide (PAM) was intercalated as a molecular spacer, which was followed by the in situ growth of zeolitic imidazolate framework-8 (ZIF-8) on the modified MXene nanosheet surface. The material exhibited a hierarchical pore structure and high specific surface area (604 m2/g), facilitating active site exposure. Maximum uranium adsorption capacity reached 909 mg/g at pH 4.0 and 298 K, with high selectivity. Adsorption kinetics conformed to a pseudo-second-order model, isotherms aligned with the Temkin model, and thermodynamics revealed a spontaneous, endothermic process. FT-IR and XPS spectroscopy confirmed the UO22+ coordination with MXene (Ti–O, –COOH), PAM (–NH2), and ZIF-8 (pyrrole-N, Zn–O). The material maintained stable performance in complex aqueous environments, exhibiting uranium adsorption capacities of 33, 34, and 37 mg/g in spiked salt lake water, seawater, and Yellow River water systems, respectively. This work has provided valuable insights for designing MXene-based adsorbents for uranium extraction from natural water.
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