溴化物
产量(工程)
化学
萃取(化学)
离子交换
阳离子聚合
吸附
离子交换树脂
无机化学
离子
钍
放射化学
瓶颈
阴离子交换器
组合化学
弱碱
核化学
侧链
链条(单位)
多孔介质
经济短缺
作者
Lifeng Chen,Wannian Feng,Yuezhou Wei,Xuexiang He,Shaoying Wang,Zhongyuan Zhou,Qian Wu,Ningchao Zheng,Xiangbiao Yin,X. H. Li,Lingling Su,Shunyan Ning
摘要
ABSTRACT Although 212 Pb and 212 Bi have significant applications in targeted α‐nuclide therapy for malignant tumors, their use is limited by the scarcity of 212 Pb/ 212 Bi resources. To address this bottleneck problem, an advanced strategy for selectively extracting 212 Pb and 212 Bi from the decay chain of 232 Th is first proposed by using an efficient porous silica‐supported anion exchanger in bromide medium. The selective adsorption mechanisms of the resin for Pb(II) and Bi(III) in bromide medium are first clarified through spectroscopic analyses and theoretical calculations. Using the novel method and exchanger, 2.07 MBq of 212 Pb is successfully separated from 232 Th and its daughters, with a record‐breaking chemical yield of 88.2% and an estimated radionuclide purity of over 99.9%. Mechanism analysis suggests that Pb(II) and Bi(III) can form anionic complexes in the HBr medium, with [PbBr 3 ] − and [BiBr 5 ] 2− being the main species captured; while Th(IV), Ac(III) and Ra(II) mainly exist as cationic forms and thus can't be fixed. To date, this represents the first report of successfully extracting 212 Pb/ 212 Bi from 232 Th and its daughters using anion exchanger in bromide medium, as well as the mechanism illustrations, which enables the supply of 212 Pb/ 212 Bi directly from the abundant natural thorium resource to be possible.
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