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裸钍离子和氧代配位钍离子的气相化学:对锕系元素化学系统理解的贡献。

Gas-phase chemistry of bare and oxo-ligated protactinium ions: a contribution to a systematic understanding of actinide chemistry.

作者信息

Gibson John K, Haire Richard G

机构信息

Chemical Sciences Division, Oak Ridge National Laboratory, P.O. Box 2008, Oak Ridge, TN 37831-6375, USA.

出版信息

Inorg Chem. 2002 Nov 4;41(22):5897-906. doi: 10.1021/ic025683t.

DOI:10.1021/ic025683t
PMID:12401099
Abstract

Gas-phase chemistry of bare and oxo-ligated protactinium ions has been studied for the first time. Comparisons were made with thorium, uranium, and neptunium ion chemistry to further the systematic understanding of 5f elements. The rates of oxidation of Pa(+) and PaO(+) by ethylene oxide compared with those of the homologous uranium ions indicate that the first and second bond dissociation energies, BDE[Pa(+)-O] and BDE[OPa(+)-O], are approximately 800 kJ mol(-1). The relatively facile fluorination of Pa(+) to PaF(4)(+) by SF(6) is consistent with the high stability of the pentavalent oxidation state of Pa. Reactions with ethene, propene, 1-butene, and iso-butene revealed that Pa(+) is a very reactive metal ion. In analogy with U(+) chemistry, ethene was trimerized by Pa(+) to give PaC(6)H(6)(+). Reactions of Pa(+) with larger alkenes resulted in secondary and tertiary products not observed for U(+) or Np(+). The bare protactinium ion is significantly more reactive with organic substrates than are heavier actinide ions. The greatest difference between Pa and heavier actinide congeners was the exceptional dehydrogenation activity of PaO(+) with alkenes; UO(+) and NpO(+) were comparatively inert. The striking reactivity of PaO(+) is attributed to the distinctive electronic structure at the metal center in this oxide, which is considered to reflect the greater availability of the 5f electrons for participation in bonding, either directly or by promotion/hybridization with higher-energy valence orbitals.

摘要

首次对裸露的和氧配位的镤离子的气相化学进行了研究。与钍、铀和镎离子化学进行了比较,以进一步系统地了解5f元素。与同源铀离子相比,环氧乙烷对Pa(+)和PaO(+)的氧化速率表明,第一和第二键解离能BDE[Pa(+)-O]和BDE[OPa(+)-O]约为800 kJ mol(-1)。Pa(+)通过SF(6)相对容易地氟化生成PaF(4)(+),这与Pa五价氧化态的高稳定性一致。与乙烯、丙烯、1-丁烯和异丁烯的反应表明,Pa(+)是一种非常活泼的金属离子。与U(+)化学类似,乙烯被Pa(+)三聚生成PaC(6)H(6)(+)。Pa(+)与较大烯烃的反应产生了U(+)或Np(+)未观察到的二级和三级产物。裸露的镤离子与有机底物的反应活性明显高于较重的锕系离子。Pa与较重的锕系同系物之间最大的差异是PaO(+)与烯烃具有异常的脱氢活性;UO(+)和NpO(+)相对惰性。PaO(+)的显著反应活性归因于该氧化物中金属中心独特的电子结构,这被认为反映了5f电子更易于直接参与键合,或通过与高能价轨道的激发/杂化参与键合。

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