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锇对甲烷的活化作用:导向离子束和理论研究

Activation of Methane by Os : Guided-Ion-Beam and Theoretical Studies.

作者信息

Armentrout P B, Parke Laura, Hinton Christopher, Citir Murat

机构信息

Chemistry Department, University of Utah, 315 S. 1400 E. Rm. 2020, Salt Lake City, UT 84112 (USA).

Present address: Institute for Scientific Research, Boston College, Chestnut Hill, MA 02467 (USA).

出版信息

Chempluschem. 2013 Sep;78(9):1157-1173. doi: 10.1002/cplu.201300147. Epub 2013 Aug 19.

DOI:10.1002/cplu.201300147
PMID:31986746
Abstract

Activation of methane by the third-row transition-metal cation Os is studied experimentally by examining the kinetic energy dependence of reactions of Os with CH and CD using guided-ion-beam tandem mass spectrometry. A flow tube ion source produces Os in its electronic ground state and primarily in the ground spin-orbit level. Dehydrogenation to form [Os,C,2 H] +H is exothermic, efficient, and the only process observed at low energies for reaction of Os with methane, whereas OsH dominates the product spectrum at higher energies. The kinetic energy dependences of the cross sections for several endothermic reactions are analyzed to give 0 K bond dissociation energies (in eV) of D (Os C)=6.20±0.21, D (Os CH)=6.77±0.15, and D (Os CH )=3.00±0.17. Because it is formed exothermically, D (Os CH ) must be greater than 4.71 eV, and a speculative interpretation suggests the exothermicity exceeds 0.6 eV. Quantum chemical calculations at the B3LYP/def2-TZVPP level show reasonable agreement with the experimental bond energies and with previous theoretical values available. Theory also provides the electronic structures of the product species as well as intermediates and transition states along the reactive potential energy surfaces. Notably, the structure of the dehydrogenation product is predicted to be HOsCH , rather than OsCH , in contrast to previous work.

摘要

通过使用导向离子束串联质谱法研究锇(Os)与CH和CD反应的动能依赖性,对第三排过渡金属阳离子Os活化甲烷进行了实验研究。流动管离子源产生处于电子基态且主要处于基态自旋轨道能级的Os。脱氢形成[Os,C,2 H] +H是放热的、高效的,并且是在低能量下观察到的Os与甲烷反应的唯一过程,而在较高能量下OsH主导产物谱。分析了几个吸热反应的截面的动能依赖性,得出D (Os C)=6.20±0.21、D (Os CH)=6.77±0.15和D (Os CH )=3.00±0.17的0 K键解离能(单位为电子伏特)。由于它是放热形成的,D (Os CH )必须大于4.71 eV,一种推测性解释表明放热超过0.6 eV。在B3LYP/def2-TZVPP水平上的量子化学计算与实验键能以及先前可用的理论值显示出合理的一致性。理论还提供了产物物种以及沿着反应势能面的中间体和过渡态的电子结构。值得注意的是,与先前的工作相反,脱氢产物的结构预计为HOsCH ,而不是OsCH 。

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