Multidisciplinary Initiative Center, Institute of High Energy Physics, Chinese Academy of Sciences, 100049, Beijing, P.R. China.
Chem Soc Rev. 2012 Sep 7;41(17):5836-65. doi: 10.1039/c2cs15354h. Epub 2012 Jul 9.
We briefly review advances in computational actinoid (An) chemistry during the past ten years in regard to two issues: the geometrical and electronic structures, and reactions. The former addresses the An-O, An-C, and M-An (M is a metal atom including An) bonds in the actinoid molecular systems, including actinoid oxo and oxide species, actinoid-carbenoid, dinuclear and diatomic systems, and the latter the hydration and ligand exchange, the disproportionation, the oxidation, the reduction of uranyl, hydroamination, and the photolysis of uranium azide. Concerning their relevance to the electronic structures and reactions of actinoids and their importance in the development of an advanced nuclear fuel cycle, we also mentioned the work on actinoid carbides and nitrides, which have been proposed to be candidates of the next generation of nuclear fuel, and the oxidation of PuO(x), which is important to understand the speciation of actinoids in the environment, followed by a brief discussion on the urgent need for a heavier involvement of computational actinoid chemistry in developing advanced reprocessing protocols of spent nuclear fuel. The paper is concluded with an outlook.
我们简要回顾了过去十年中计算锕系(An)化学在两个问题上的进展:几何和电子结构以及反应。前者涉及锕系分子体系中的 An-O、An-C 和 M-An(M 是包括 An 的金属原子)键,包括锕系氧和氧化物物种、锕系卡宾、双核和双原子体系,后者涉及水合和配体交换、歧化、氧化、还原、氢胺化和铀叠氮的光解。考虑到它们与锕系元素的电子结构和反应的相关性及其在先进核燃料循环发展中的重要性,我们还提到了有关锕系碳化物和氮化物的工作,这些化合物被提议为下一代核燃料的候选物,以及 PuO(x)的氧化,这对于理解环境中锕系元素的形态很重要,随后简要讨论了在开发乏核燃料的先进后处理方案方面迫切需要更深入地参与计算锕系化学。本文最后展望了未来。