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Removal of cesium ions from aqueous solutions using various separation technologies

机译:使用各种分离技术从水溶液中除去铯离子

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Cesium is the major fission product of uranium, which widely exists in radioactive wastewater. Radiocesium has potential adverse effects on human health and ecological environment. Different methods such as chemical precipitation, coagulation/co-precipitation, solvent extraction, membrane process, chemical reduction, and adsorption have been used to remove radioactive cesium from aqueous solution. However, the development of innovative technologies capable of selectively removing radioactive cesium is still imperative yet challenging. This review focused on cesium removal using various separation technologies, including chemical precipitation, solvent extraction, membrane separation, and adsorption. The key restraints for cesium removal, as well as the recent progress of these methods have also been discussed. Particular attention has been paid to the adsorption methods, which has been highlighted by introducing the latest advances in inorganic adsorbents (such as metal hexacyanoferrates, clay minerals, carbon-based-adsorbents, and ammonium molybdophosphate), organic adsorbents (such as ion exchange resin, metal-organic frameworks and supramolecular/indicator grafting adsorbents), and biosorbents (such as agroforestry wastes and microbial biomass). Adsorption-based methods are high efficient in separation of cesium ions from aqueous streams, and adsorption of cesium ions has been investigated intensively and even used in practical applications, there is still considerable scope for improvement in terms of adsorption capacity and selectivity.
机译:铯是铀的主要裂变产物,广泛存在放射性废水。射频对人类健康和生态环境具有潜在的不利影响。不同方法,如化学沉淀,凝血/共析出,溶剂萃取,膜加工,化学还原和吸附,用于从水溶液中除去放射性铯。然而,能够选择性地去除放射性铯的创新技术的发展仍然是令人挑战性的。本综述重点是使用各种分离技术的铯去除,包括化学沉淀,溶剂萃取,膜分离和吸附。还讨论了铯剥离的关键限制,以及这些方法的最近进展。通过引入无机吸附剂(如金属六氰基甲酸酯,粘土矿物质,碳基吸附剂和钼磷酸铵),有机吸附剂(如离子交换树脂(如离子交换树脂)(如离子交换树脂(如离子交换树脂)(如离子交换树脂)(如离子交换树脂(如离子交换树脂)而突出的吸附方法,金属 - 有机框架和超分子/指示剂接枝吸附剂),以及生物吸收剂(如农用农用品废物和微生物生物量)。基于吸附的方法在含水流中分离铯离子的高效性,并且已经集中研究了铯离子的吸附,甚至在实际应用中使用,仍然有很大的范围,可改善吸附能力和选择性。

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