Gopakumar Gopinadhanpillai, Sreenivasulu B, Suresh A, Brahmmananda Rao C V S, Sivaraman N, Joseph M, Anoop Anakuthil
Fuel Chemistry Division, Indira Gandhi Centre for Atomic Research , Kalpakkam, Tamil Nadu 603 102, India.
Department of Chemistry, Indian Institute of Technology , Kharagpur, West Bengal 721 302, India.
J Phys Chem A. 2016 Jun 23;120(24):4201-10. doi: 10.1021/acs.jpca.6b02668. Epub 2016 Jun 10.
Tri-n-butyl phosphate (TBP), used as the extractant in nuclear fuel reprocessing, shows superior extraction abilities for Pu(IV) over a large number of fission products including Zr(IV). We have applied density functional theory (DFT) calculations to explain this selectivity by investigating differences in electronic structures of Pu(NO3)4·2TBP and Zr(NO3)4·2TBP complexes. On the basis of our quantum chemical calculations, we have established the lowest energy electronic states for both complexes; the quintet is the ground state for the former, whereas the latter exists in the singlet spin state. The calculated structural parameters for the optimized geometry of the plutonium complex are in agreement with the experimental results. Atoms in Molecules analysis revealed a considerable amount of ionic character to M-O{TBP} and M-O{NO3} bonds. Additionally, we have also investigated the extraction behavior of TBP for metal nitrates and have estimated the extraction energies to be -73.1 and -57.6 kcal/mol for Pu(IV) and Zr(IV), respectively. The large extraction energy of Pu(IV) system is in agreement with the observed selectivity in the extraction of Pu.
磷酸三丁酯(TBP)用作核燃料后处理中的萃取剂,与包括Zr(IV)在内的大量裂变产物相比,它对Pu(IV)具有卓越的萃取能力。我们应用密度泛函理论(DFT)计算,通过研究Pu(NO3)4·2TBP和Zr(NO3)4·2TBP配合物电子结构的差异来解释这种选择性。基于我们的量子化学计算,我们确定了两种配合物的最低能量电子态;五重态是前者的基态,而后者以单重态自旋状态存在。钚配合物优化几何结构的计算结构参数与实验结果一致。分子中的原子分析表明,M-O{TBP}和M-O{NO3}键具有相当程度的离子特性。此外,我们还研究了TBP对金属硝酸盐的萃取行为,估计Pu(IV)和Zr(IV)的萃取能分别为-73.1和-57.6 kcal/mol。Pu(IV)体系较大的萃取能与观察到的Pu萃取选择性一致。