无机离子交换剂去除放射性废水中的铯

B. Figueiredo, Simão P. Cardoso, Inês Portugal, J. Rocha, Carlos M. Silva
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引用次数: 43

摘要

离子交换是一种经过验证的放射性废水净化过程,其中无机吸附剂因其热、化学和辐射稳定性而成为理想的吸附剂。本文综述了沸石、钛硅酸盐、六氰高铁酸盐、金属氧化物和含水金属氧化物、膨润土/粘土以及磷钼酸铵(amp)关键家族等无机交换剂对Cs+的去除。新型选择性复合材料的设计也重点讨论了基于amp、六氰高铁酸盐和钛硅酸盐/沸石的复合材料。未来的无机Cs+交换剂将包含有前途的固体,如镧系硅酸盐、钛酸钠和金属硫化物。镧系硅酸盐的光致发光特性和层状镓锑硫化材料在酸性和碱性溶液中的效率显示出相当大的实际应用潜力。讨论了离子交换体系的吸附剂容量和选择性(与竞争对手)、pH、温度和溶液盐度。交换剂的微观特征及其相关机制(如孔径、反离子半径、离子的脱水能、固体交换剂中的配位环境和位点可及性)通常用于解释离子交换行为。总的来说,审查了250多种出版物,并在补充材料中提供了大量数据汇编。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inorganic Ion Exchangers for Cesium Removal from Radioactive Wastewater
Ion exchange is a proven process for radioactive wastewater decontamination, where inorganic sorbents are ideal due to their thermal, chemical and radiation stability. This review focuses on the removal of Cs+ by inorganic exchangers, viz. zeolites, titanosilicates, hexacyanoferrates metal oxides and hydrous metal oxides, bentonite/clays and the key family of ammonium phosphomolybdates (AMPs). The design of new selective composites is also addressed focusing on those based on AMPs, hexacyanoferrates and titanosilicates/zeolites. Future inorganic Cs+ exchangers will encompass promising solids, like lanthanide silicates, sodium titanates and metal sulfides. The sensing ability derived from the photoluminescence properties of lanthanide silicates and the efficiency of layered gallium-antimony-sulfide materials in acidic and basic solutions disclose considerable potential for real applications. The ion exchange systems are discussed in terms of sorbent capacity and selectivity (with competitors), pH, temperature and solution salinity. The microscopic features of the exchangers and the associated mechanisms (e.g., pore size, counterions radii, dehydration energy of the ions, coordination environments in the solid exchanger, and site accessibility) are always used for interpreting the ion exchange behavior. On the whole, more than 250 publications were reviewed and a large compilation of data is provided in Supplemental Material.
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