Zakurdaeva Olga A, Nesterov Sergey V, Sokolova Natalya A, Dorovatovskii Pavel V, Zubavichus Yan V, Khrustalev Victor N, Asachenko Andrey F, Chesnokov Gleb A, Nechaev Mikhail S, Feldman Vladimir I
Enikolopov Institute of Synthetic Polymer Materials of RAS , ul. Profsoyuznaya, 70, Moscow 117393, Russia.
Department of Chemistry, Lomonosov Moscow State University , Moscow 119991, Russia.
J Phys Chem B. 2018 Feb 15;122(6):1992-2000. doi: 10.1021/acs.jpcb.7b11498. Epub 2018 Feb 5.
Ionic liquid/crown ether compositions are an attractive alternative to traditional extractants in the processes for spent nuclear fuel and liquid radioactive wastes reprocessing. These compositions are exposed to ionizing radiation, and their radiation stability, especially in the presence of metal salts, is a crucial issue. In the present study, the macrocyclic 18C6·Sr(BF) and 18C6·Sr(PF) complexes simulating the components of metal loaded ionic liquid/crown ether extractants were synthesized and their structures were characterized by FTIR spectroscopy and single-crystal X-ray diffraction analysis. Inclusion of Sr cation into the 18C6 cavity resulted in more symmetric D conformations of the macrocycle. The structural transformations of the crown ether were accompanied by an elongation of polyether C-O bonds that could increase the possibility of radiolytic cleavage of the macrocycle. However, EPR study of the synthesized compounds subjected to X-ray irradiation revealed predominant formation of macrocyclic -CH-ĊH-O- radicals. This result demonstrated an evidence for indirect action of ionizing radiation on individual components of the complexes and was reasonably described by a positive "hole" transfer from primary macrocyclic radical cation to fluorous anion at the primary stages of radiolysis and a subsequent interaction of fluorine atom with 18C6 macrocycle in secondary radical reactions. The observed effects may be partially responsible for enhanced sensitivity of the ionic liquid/crown ether extractants to ionizing radiation due to chemical blocking of the crown ether with radiolytic HF, radiation-chemical degradation of the 18C6, and precipitation of a low-soluble SrF.
离子液体/冠醚组合物是乏核燃料和液态放射性废物后处理过程中传统萃取剂的一种有吸引力的替代品。这些组合物会受到电离辐射,其辐射稳定性,尤其是在金属盐存在的情况下,是一个关键问题。在本研究中,合成了模拟负载金属的离子液体/冠醚萃取剂成分的大环18C6·Sr(BF)和18C6·Sr(PF)配合物,并通过傅里叶变换红外光谱和单晶X射线衍射分析对其结构进行了表征。将Sr阳离子纳入18C6空腔导致大环的D构象更加对称。冠醚的结构转变伴随着聚醚C-O键的伸长,这可能增加大环辐射裂解的可能性。然而,对经X射线辐照的合成化合物进行的电子顺磁共振研究表明,主要形成了大环-CH-ĊH-O-自由基。这一结果证明了电离辐射对配合物单个组分的间接作用,并且在辐射分解的初级阶段,从初级大环自由基阳离子到氟阴离子的正“空穴”转移以及随后在二级自由基反应中氟原子与18C6大环的相互作用可以合理地解释这一现象。观察到的这些效应可能部分导致离子液体/冠醚萃取剂对电离辐射的敏感性增强,这是由于辐射产生的HF对冠醚的化学封闭、18C6的辐射化学降解以及低溶性SrF的沉淀。