化学
加利福尼亚
分离(微生物学)
冠醚
立体化学
离子
有机化学
核物理学
生物信息学
生物
物理
中子
作者
Todd N. Poe,Harry Ramanantoanina,Joseph M. Sperling,Hannah B. Wineinger,Brian M. Rotermund,Jacob P. Brannon,Zhuanling Bai,Benjamin Scheibe,Nicholas Beck,Brian N. Long,Samantha Justiniano,Thomas E. Albrecht‐Schmitt,Cristian Celis‐Barros
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2023-03-27
卷期号:15 (5): 722-728
被引量:24
标识
DOI:10.1038/s41557-023-01170-9
摘要
The actinides, from californium to nobelium (Z = 98–102), are known to have an accessible +2 oxidation state. Understanding the origin of this chemical behaviour requires characterizing CfII materials, but investigations are hampered by the fact that they have remained difficult to isolate. This partly arises from the intrinsic challenges of manipulating this unstable element, as well as a lack of suitable reductants that do not reduce CfIII to Cf°. Here we show that a CfII crown–ether complex, Cf(18-crown-6)I2, can be prepared using an Al/Hg amalgam as a reductant. Spectroscopic evidence shows that CfIII can be quantitatively reduced to CfII, and rapid radiolytic re-oxidation in solution yields co-crystallized mixtures of CfII and CfIII complexes without the Al/Hg amalgam. Quantum-chemical calculations show that the Cf‒ligand interactions are highly ionic and that 5f/6d mixing is absent, resulting in weak 5f→5f transitions and an absorption spectrum dominated by 5f→6d transitions. Californium is difficult to prepare in its divalent state. Now, crystals of a Cf(II) crown–ether complex have been synthesized by reduction of a Cf(III) precursor with an Al/Hg amalgam. They exhibit 5f→6d transitions in the visible region and near-infrared emission that are highly sensitive to changes in the coordination environment.
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