Kong Xiang-He, Wu Qun-Yan, Wang Cong-Zhi, Lan Jian-Hui, Chai Zhi-Fang, Nie Chang-Ming, Shi Wei-Qun
Laboratory of Nuclear Energy Chemistry, Institute of High Energy Physics , Chinese Academy of Sciences , Beijing , 100049 , China.
School of Nuclear Resources Engineering , University of South China , Hengyang 421001 , China.
J Phys Chem A. 2018 May 10;122(18):4499-4507. doi: 10.1021/acs.jpca.8b00177. Epub 2018 Apr 26.
Separation of trivalent actinides (An(III)) and lanthanides (Ln(III)) is one of the most important steps in spent nuclear fuel reprocessing. However, it is very difficult and challenging to separate them due to their similar chemical properties. Recently the pyridylpyrazole ligand (PypzH) has been identified to show good separation ability toward Am(III) over Eu(III). In this work, to explore the Am(III)/Eu(III) separation mechanism of PypzH at the molecular level, the geometrical structures, bonding nature, and thermodynamic behaviors of the Am(III) and Eu(III) complexes with PypzH ligands modified by alkyl chains (Cn-PypzH, n = 2, 4, 8) have been systematically investigated using scalar relativistic density functional theory (DFT). According to the NBO (natural bonding orbital) and QTAIM (quantum theory of atoms in molecules) analyses, the M-N bonds exhibit a certain degree of covalent character, and more covalency appears in Am-N bonds compared to Eu-N bonds. Thermodynamic analyses suggest that the 1:1 extraction reaction, [M(NO)(HO)] + PypzH + 2NO → M(PypzH)(NO)(HO) + 5HO, is the most suitable for Am(III)/Eu(III) separation. Furthermore, the extraction ability and the Am(III)/Eu(III) selectivity of the ligand PypzH is indeed enhanced by adding alkyl-substituted chains in agreement with experimental observations. Besides this, the nitrogen atom of pyrazole ring plays a more significant role in the extraction reactions related to Am(III)/Eu(III) separation compared to that of pyridine ring. This work could identify the mechanism of the Am(III)/Eu(III) selectivity of the ligand PypzH and provide valuable theoretical information for achieving an efficient Am(III)/Eu(III) separation process for spent nuclear fuel reprocessing.
三价锕系元素(An(III))与镧系元素(Ln(III))的分离是乏核燃料后处理中最重要的步骤之一。然而,由于它们相似的化学性质,将它们分离非常困难且具有挑战性。最近已确定吡啶基吡唑配体(PypzH)对Am(III)的分离能力优于Eu(III)。在这项工作中,为了在分子水平上探索PypzH的Am(III)/Eu(III)分离机制,使用标量相对论密度泛函理论(DFT)系统地研究了具有烷基链修饰的PypzH配体(Cn-PypzH,n = 2、4、8)的Am(III)和Eu(III)配合物的几何结构、键合性质和热力学行为。根据自然键轨道(NBO)和分子中的原子量子理论(QTAIM)分析,M-N键表现出一定程度的共价特征,并且与Eu-N键相比,Am-N键中出现更多的共价性。热力学分析表明,1:1萃取反应[M(NO)(H₂O)₅] + PypzH + 2NO₃⁻ → M(PypzH)(NO₃)₂(H₂O) + 5H₂O最适合用于Am(III)/Eu(III)的分离。此外,与实验观察结果一致,通过添加烷基取代链确实增强了配体PypzH的萃取能力和Am(III)/Eu(III)选择性。除此之外,与吡啶环相比,吡唑环的氮原子在与Am(III)/Eu(III)分离相关的萃取反应中起更重要的作用。这项工作可以确定配体PypzH的Am(III)/Eu(III)选择性机制,并为实现乏核燃料后处理中高效的Am(III)/Eu(III)分离过程提供有价值的理论信息。