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形成同核过渡金属氢化物配合物的真实边界。

True boundary for the formation of homoleptic transition-metal hydride complexes.

机构信息

Institute for Materials Research, Tohoku University, Sendai 980-8577 (Japan).

出版信息

Angew Chem Int Ed Engl. 2015 May 4;54(19):5650-3. doi: 10.1002/anie.201500792. Epub 2015 Mar 13.

Abstract

Despite many exploratory studies over the past several decades, the presently known transition metals that form homoleptic transition-metal hydride complexes are limited to the Groups 7-12. Here we present evidence for the formation of Mg3 CrH8 , containing the first Group 6 hydride complex CrH7 . Our theoretical calculations reveal that pentagonal-bipyramidal H coordination allows the formation of σ-bonds between H and Cr. The results are strongly supported by neutron diffraction and IR spectroscopic measurements. Given that the Group 3-5 elements favor ionic/metallic bonding with H, along with the current results, the true boundary for the formation of homoleptic transition-metal hydride complexes should be between Group 5 and 6. As the H coordination number generally tends to increase with decreasing atomic number of transition metals, the revised boundary suggests high potential for further discovery of hydrogen-rich materials that are of both technological and fundamental interest.

摘要

尽管在过去几十年中有许多探索性研究,但目前已知的形成同核过渡金属氢化物配合物的过渡金属仅限于第 7-12 族。在这里,我们提供了形成 Mg3 CrH8 的证据,其中包含第一个第 6 族氢化物配合物 CrH7 。我们的理论计算表明,五边形双锥 H 配位允许 H 和 Cr 之间形成 σ 键。中子衍射和红外光谱测量结果强烈支持这一结果。鉴于第 3-5 族元素倾向于与 H 形成离子/金属键,再加上目前的结果,同核过渡金属氢化物配合物形成的真正界限应该在第 5 族和第 6 族之间。由于 H 配位数通常随着过渡金属原子序数的降低而增加,因此修订后的边界表明,进一步发现具有技术和基础兴趣的富含氢材料具有很高的潜力。

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