Lim Jaewoong, Park Kyoung Chul, Thaggard Grace C, Liu Yuan, Maldeni Kankanamalage Buddhima K P, Toler Donald J, Ta An T, Kittikhunnatham Preecha, Smith Mark D, Phillpot Simon R, Shustova Natalia B
Department of Chemistry and Biochemistry, University of South Carolina, 631 Sumter Street, Columbia, South Carolina 29208, United States.
Department of Materials Science and Engineering, University of Florida, Gainesville, Florida 32611, United States.
J Am Chem Soc. 2024 May 1;146(17):12155-12166. doi: 10.1021/jacs.4c02327. Epub 2024 Apr 22.
The fundamental interest in actinide chemistry, particularly for the development of thorium-based materials, is experiencing a renaissance owing to the recent and rapidly growing attention to fuel cycle reactors, radiological daughters for nuclear medicine, and efficient nuclear stockpile development. Herein, we uncover fundamental principles of thorium chemistry on the example of Th-based extended structures such as metal-organic frameworks in comparison with the discrete systems and zirconium extended analogs, demonstrating remarkable over two-and-half-year chemical stability of Th-based frameworks as a function of metal node connectivity, amount of defects, and conformational linker rigidity through comprehensive spectroscopic and crystallographic analysis as well as theoretical modeling. Despite exceptional chemical stability, we report the first example of studies focusing on the reactivity of the most chemically stable Th-based frameworks in comparison with the discrete Th-based systems such as metal-organic complexes and a cage, contrasting multicycle recyclability and selectivity (>97%) of the extended structures in comparison with the molecular compounds. Overall, the presented work not only establishes the conceptual foundation for evaluating the capabilities of Th-based materials but also represents a milestone for their multifaceted future and foreshadows their potential to shape the next era of actinide chemistry.
由于近期对燃料循环反应堆、核医学放射性子体以及高效核储备发展的关注度迅速上升,锕系元素化学,特别是钍基材料的开发,正迎来复兴。在此,我们以钍基金属有机框架等钍基扩展结构为例,与离散体系和锆基扩展类似物进行比较,揭示钍化学的基本原理。通过全面的光谱分析和晶体学分析以及理论建模,证明了钍基框架具有超过两年半的显著化学稳定性,这是金属节点连接性、缺陷数量和构象连接体刚性的函数。尽管具有出色的化学稳定性,但我们首次报道了与金属有机配合物和笼状等离散钍基体系相比,针对最具化学稳定性的钍基框架的反应性研究实例,对比了扩展结构与分子化合物的多循环可回收性和选择性(>97%)。总体而言,所展示的工作不仅为评估钍基材料的性能奠定了概念基础,也代表了其多方面未来发展的一个里程碑,并预示着它们塑造下一个锕系元素化学时代的潜力。