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通过固有硫原子和附着在 MoS 边缘硫上的磷酸基团的协同相互作用实现铀的超快速捕获。

Ultra-fast uranium capture via the synergistic interaction of the intrinsic sulfur atoms and the phosphoric acid groups adhered to edge sulfur of MoS.

机构信息

State Key Laboratory of Nuclear Resources and Environment, East China University of Technology, Nanchang, Jiangxi 330013, PR China; Jiangxi Province Key Laboratory of Synthetic Chemistry, East China University of Technology, Nanchang, Jiangxi 330013, PR China.

State Key Laboratory of Nuclear Resources and Environment, East China University of Technology, Nanchang, Jiangxi 330013, PR China.

出版信息

J Hazard Mater. 2023 Sep 5;457:131745. doi: 10.1016/j.jhazmat.2023.131745. Epub 2023 Jun 2.

Abstract

In order to deal with the sudden nuclear leakage event to suppress the spread of radioactive contaminants in a short period of time, it is extremely urgent needed to explore an adsorbent that could be capable of in-situ remedial actions to rapidly capture the leaked radionuclides in split second. An adsorbent was developed that MoS via ultrasonic to expose more surface defects afterwards functionalized by phosphoric acid resulting in more active sites being endowed on the edge S atoms of Mo-vacancy defects, while simultaneously increased the hydrophilicity and interlayer spacing. Hence, an overwhelming fast adsorption rates (adsorption equilibrium within 30 s) are presented and place the MoS-PO at the top of performing sorbent materials. Moreover, the maximum capacity calculated from Langmuir model is as high as 354.61 mg·g, the selective adsorption capacity (S) achieving 71.2% in the multi-ion system and with more than 91% capacity retention after 5 cycles of recycling. Finally, XPS and DFT insight into the adsorption mechanism, which can be explained as interaction of UO on the surface of MoS-PO by forming U-O and U-S bonds. The successful fabrication of such a material may provide a promising solution for emergency treatment of radioactive wastewater during nuclear leakage events.

摘要

为了应对突发的核泄漏事件,在短时间内抑制放射性污染物的扩散,极有必要探索一种能够进行就地补救的吸附剂,以便在瞬间迅速捕获泄漏的放射性核素。通过超声处理 MoS 来暴露更多的表面缺陷,随后用磷酸功能化,在 Mo 空位缺陷的边缘 S 原子上赋予更多的活性位点,同时增加亲水性和层间距,从而开发出一种吸附速度极快的吸附剂(吸附平衡在 30 s 内完成),使 MoS-PO 成为性能最佳的吸附材料之一。此外,从 Langmuir 模型计算出的最大容量高达 354.61mg·g,在多离子体系中的选择性吸附容量(S)达到 71.2%,经过 5 次循环回收后,容量保持率超过 91%。最后,通过 XPS 和 DFT 深入研究吸附机制,可以解释为 UO 在 MoS-PO 表面通过形成 U-O 和 U-S 键相互作用。这种材料的成功制备可能为核泄漏事件中放射性废水的应急处理提供了一种有前途的解决方案。

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