铯
化学
微型多孔材料
放射性废物
离子
水溶液
分配系数
选择性
放射化学
存水弯(水管)
放射源
无机化学
吸附
动力学
离子交换
缓冲器(光纤)
水介质
电流(流体)
化学工程
化学动力学
放射性示踪剂
作者
Yan Zhuang,Jie Yan,Jin-Ting Wu,Yu-Han Zhao,Jian Cheng Nie,Jun Li,Bo Zhang
标识
DOI:10.1021/acs.inorgchem.5c04226
摘要
Effective and efficient incarceration of 137Cs+ ions from high-level radioactive waste liquids is of particular significance for the purpose of contaminant management and resource recovery, making it one of the hot spots in current scientific research. Herein, we detailedly evaluate the cesium ion-exchange behaviors of a microporous silver selenidostannate, namely, [CH3NH3]2[H3O]Ag5Sn4Se12·C2H5OH (denoted as MSTS), under various conditions. As a new cesium scavenger, MSTS exhibits a large saturated capacity (219.08 mg/g) and rapid uptake kinetics (within 15 min). Benefiting from its suitable windows and channels, MSTS displays excellent selectivity and strong preference for low-concentration cesium even in the coexistence of interfering ions (e.g., Na+, K+, Mg2+, Ca2+, HA, and CO32-) and real water environments, in which distribution coefficient Kd values (typically more than 104 mL/g) far exceed or match well with the levels of many high-performance oxide/sulfide-based competitors. More attractively, when packed into an ion-exchange column, MSTS also maintains high cesium ion removal efficiencies (98.97-99.34%) for treating continuous flow. These charming advantages, together with its broad acid/alkali resistance and good recycling stability, highlight MSTS's great potential in the effective and efficient elimination of radioactive cesium from aqueous solution.
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