| Literature DB >> 27563098 |
Mark A Silver1, Samantha K Cary1, Jason A Johnson2, Ryan E Baumbach3, Alexandra A Arico1, Morgan Luckey4, Matthew Urban4, Jamie C Wang1, Matthew J Polinski5, Alexander Chemey1, Guokui Liu6, Kuan-Wen Chen3, Shelley M Van Cleve7, Matthew L Marsh1, Teresa M Eaton1, Lambertus J van de Burgt1, Ashley L Gray2, David E Hobart1, Kenneth Hanson1, Laurent Maron8, Frédéric Gendron9, Jochen Autschbach9, Manfred Speldrich10, Paul Kögerler10, Ping Yang11, Jenifer Braley12, Thomas E Albrecht-Schmitt13.
Abstract
Berkelium is positioned at a crucial location in the actinide series between the inherently stable half-filled 5f(7) configuration of curium and the abrupt transition in chemical behavior created by the onset of a metastable divalent state that starts at californium. However, the mere 320-day half-life of berkelium's only available isotope, (249)Bk, has hindered in-depth studies of the element's coordination chemistry. Herein, we report the synthesis and detailed solid-state and solution-phase characterization of a berkelium coordination complex, Bk(III)tris(dipicolinate), as well as a chemically distinct Bk(III) borate material for comparison. We demonstrate that berkelium's complexation is analogous to that of californium. However, from a range of spectroscopic techniques and quantum mechanical calculations, it is clear that spin-orbit coupling contributes significantly to berkelium's multiconfigurational ground state.Entities:
Year: 2016 PMID: 27563098 DOI: 10.1126/science.aaf3762
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728