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通过络合稳定 HHeF:这真的是可行的策略吗?

Stabilization of HHeF by complexation: is it a really viable strategy?

机构信息

Dipartimento di Scienze Ambientali, Università della Tuscia, L.go dell' Università, s.n.c., 01100 Viterbo, Italy.

出版信息

Chemistry. 2010 Jun 1;16(21):6257-64. doi: 10.1002/chem.200903282.

Abstract

Ab initio calculations at the MP2 and CCSD(T) levels of theory have disclosed the conceivable existence of fluorine-coordinated complexes of HHeF with alkali-metal ions and molecules M(+) (M(+)=Li(+)-Cs(+)), M(+)-OH(2), M(+)-NH(3) (M(+)=Li(+), Na(+)), and MX (M=Li, Na; X=F, Cl, Br). All these ligands L induce a shortening of the H-He distance and a lengthening of the He-F distance accompanied by consistent blue- and redshifts, respectively, of the H-He and He-F stretching modes. These structural effects are qualitatively similar to those predicted for other investigated complexes of the noble gas hydrides HNgY, but are quantitatively more pronounced. For example, the blueshifts of the H-He stretching mode are exceptionally large, ranging between around 750 and 1000 cm(-1). The interactions of HHeF with the ligands investigated herein also enhance the (HHe)(+)F(-) dipole character and produce large complexation energies of around 20-60 kcal mol(-1). Most of the HHeF-L complexes are indeed so stable that the three-body dissociation of HHeF into H+He+F, exothermic by around 25-30 kcal mol(-1), becomes endothermic. This effect is, however, accompanied by a strong decrease in the H-He-F bending barrier. The complexation energies, DeltaE, and the bending barriers, E*, are, in particular, related by the inverse relationship E*(kcal mol(-1))=6.9exp[-0.041DeltaE(kcal mol(-1))]. Therefore the HHeF-L complexes, which are definitely stable with respect to H+He+F+L (DeltaE approximately 25-30 kcal mol(-1)), are predicted to have bending barriers of only 0.5-2 kcal mol(-1). Overall, our calculations cast doubt on the conceivable stabilization of HHeF by complexation.

摘要

从头算(MP2 和 CCSD(T) 理论)表明,HeF 与碱金属离子和分子(M(+))(M(+)=Li(+) - Cs(+))、M(+)-OH(2)、M(+)-NH(3)(M(+)=Li(+)、Na(+))和 MX(M=Li、Na;X=F、Cl、Br)形成配位复合物是有可能的。所有这些配体 L 都会导致 H-He 距离缩短,He-F 距离变长,同时分别导致 H-He 和 He-F 伸缩模式的蓝移和红移。这些结构效应与其他已研究的稀有气体氢化物 HNgY 配合物预测的结构效应相似,但在数量上更为显著。例如,H-He 伸缩模式的蓝移非常大,范围在 750 到 1000cm(-1) 之间。HHeF 与本文所研究的配体的相互作用也增强了(HHe)(+)F(-)偶极特性,并产生了约 20-60kcal mol(-1) 的大配合能。大多数 HHeF-L 配合物非常稳定,以至于 HHeF 分解为 H+He+F 的三体离解反应,放热约 25-30kcal mol(-1),变成吸热。然而,这伴随着 H-He-F 弯曲势垒的强烈降低。配合能 DeltaE 和弯曲势垒 E*,特别是通过逆关系 E*(kcal mol(-1))=6.9exp[-0.041DeltaE(kcal mol(-1))] 相关。因此,对于 H+He+F+L(DeltaE 约为 25-30kcal mol(-1)),HHeF-L 配合物是稳定的,预计其弯曲势垒仅为 0.5-2kcal mol(-1)。总的来说,我们的计算对通过配位稳定 HeF 的设想提出了质疑。

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