吸附
铋
初湿浸渍
解吸
化学吸附
碘
吸附
沸石
X射线光电子能谱
傅里叶变换红外光谱
化学
材料科学
无机化学
核化学
化学工程
有机化学
催化作用
选择性
工程类
作者
Zhenjiang Tian,Tien‐Shee Chee,Ruixue Meng,Yuxun Hao,Xiangyu Zhou,Bin Ma,Lin Zhu,Tao Duan,Chengliang Xiao
标识
DOI:10.1016/j.efmat.2022.05.006
摘要
The economical and effective capture of radioactive iodine has always been an important field of research in the reprocessing of spent fuel. In this work, we successfully prepared a novel bismuth-modified all-silica beta zeolite material ([email protected]) though a modified incipient wetness impregnation method. A series of iodine sorption and desorption experiments and characterization methods (PXRD, SEM, TEM, TG, XPS, FTIR, 29Si NMR, Raman, PDF, and DFT calculation) were performed to reveal the structural characteristics and the mechanism of iodine capture of [email protected] The results showed that the sorption mechanism generally involved the preferential enrichment of iodine molecules in the 12-ring channels of the Si-BEA, for which the adsorption energy was −0.23 eV. The enriched iodine molecules subsequently reacted with the active bismuth sites (Bi0 and β-Bi2O3) on the surface of Si-BEA to form bismuth iodine compounds (BiI3 and BiOI), thereby achieving immobilization of iodine through strong chemical interactions. Through a combination of physical and chemical effects, [email protected] could reach a sorption capacity of 600 mg/g, of which the chemisorption accounts for approximately 350 mg/g, in approximately 2 h. In addition, we explored the effects of different loadings of bismuth and experimental temperatures on the iodine sorption performance and scaled up the preparation of [email protected]
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