Wehrli Dominik, Génévriez Matthieu, Merkt Frédéric
Laboratory of Physical Chemistry, ETH Zurich, CH-8093 Zurich, Switzerland.
Phys Chem Chem Phys. 2021 May 14;23(18):10978-10987. doi: 10.1039/d1cp00730k. Epub 2021 Apr 30.
Although numerous doubly positively charged diatomic molecules (diatomic dications) are known from investigations using mass spectrometry and ab initio quantum chemistry, only three of them, NO, N and DCl, have been studied using rotationally resolved optical spectroscopy and only about a dozen by vibrationally resolved double-ionization methods. So far, no thermodynamically stable diatomic dication has been characterized spectroscopically, primarily because of experimental difficulties associated with their synthesis in sufficient densities in the gas phase. Indeed, such molecules typically involve, as constituents, rare-gas, halogen, chalcogen, and metal atoms. We report here on a new approach to characterize molecular dications based on high-resolution photoelectron spectroscopy of the singly charged parent molecular cation and present the first spectroscopic characterization of a thermodynamically stable diatomic dication, MgAr. From the fully resolved vibrational and partially resolved rotational structures of the photoelectron spectra of MgAr and MgAr, we determined the potential-energy function of the electronic ground state of MgAr, its dissociation (binding) energy (D = 10 690(3) cm), and its harmonic (ω(MgAr) = 327.02(11) cm) and anharmonic (ωx(MgAr) = 2.477(15) cm) vibrational constants. The analysis enables us to explain quantitatively how the strong bond arises in this dication despite the fact that Ar and Mg both have a full-shell rare-gas electronic configuration.
尽管通过质谱分析和从头算量子化学研究已经发现了许多带两个正电荷的双原子分子(双原子二价阳离子),但其中只有三种,即一氧化氮(NO)、氮气(N₂)和氯化氘(DCl),通过旋转分辨光谱进行了研究,而通过振动分辨双电离方法研究的只有大约十二种。到目前为止,尚未通过光谱表征任何热力学稳定的双原子二价阳离子,主要是因为在气相中以足够的密度合成它们存在实验困难。实际上,这类分子通常包含稀有气体、卤素、硫族元素和金属原子作为组成部分。我们在此报告一种基于单电荷母体分子阳离子的高分辨率光电子能谱来表征分子二价阳离子的新方法,并展示了热力学稳定的双原子二价阳离子MgAr的首次光谱表征。从MgAr⁺和MgAr的光电子能谱的完全分辨的振动结构和部分分辨的转动结构中,我们确定了MgAr基态电子态的势能函数、其解离(结合)能(D₀ = 10 690(3) cm⁻¹)以及其谐波(ωₑ(MgAr⁺) = 327.02(11) cm⁻¹)和非谐波(ωₓ(MgAr⁺) = 2.477(15) cm⁻¹)振动常数。该分析使我们能够定量解释尽管氩(Ar)和镁(Mg)都具有满壳层稀有气体电子构型,但这种二价阳离子中如何形成强键。