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硝基甲烷二聚体中独特的 O═N…O 膦腈相互作用:使用基质隔离红外光谱和计算方法的证据。

Unique O═N...O Pnicogen Interactions in Nitromethane Dimers: Evidence Using Matrix Isolation Infrared Spectroscopy and Computational Methodology.

机构信息

Materials Chemistry and Metal Fuel Cycle Group, Indira Gandhi Centre for Atomic Research, Kalpakkam 603102, Tamilnadu, India.

Homi Bhabha National Institute, Training School Complex, Anushaktinagar, Mumbai 400094, India.

出版信息

J Phys Chem A. 2022 Jun 9;126(22):3511-3520. doi: 10.1021/acs.jpca.2c02248. Epub 2022 May 24.

Abstract

Geometries of nitromethane homodimers have been revisited using and density functional methodologies, following their formation within cryogenic matrices, confirmed using infrared spectroscopy. In contrast to the claim that the intermolecular interactions are due to dispersion forces or very weak hydrogen bonds, in the present work, concrete evidence for the prevalence of O═N...O pnicogen bonding has been presented. The pnicogen bonds have been found to be primarily responsible for the characteristic geometry of a homodimer. The formation of a nitromethane dimer with pnicogen bonding stabilization is evidenced using matrix isolation infrared spectroscopy with Ne and Ar matrices and computations. The interactions within homodimers have been characterized using quantum theory of atoms in molecules, natural bond orbital, energy decomposition, electrostatic potential mapping, and noncovalent interaction analyses. The larger intermolecular separations in liquid nitromethane indicated by previous molecular dynamics-based studies alongside the supposed invariance of infrared spectra in the gas phase and liquid phase could have led to the assumption of a lack of intermolecular interactions. However, the prevalence of hydrogen and pnicogen bonds across these larger than usual separations is affirmed by the geometries presented here.

摘要

已使用 和密度泛函方法重新研究了硝甲烷同二聚体的几何形状,这些同二聚体是在低温基质中形成的,并通过红外光谱得到证实。与声称分子间相互作用是由于色散力或非常弱的氢键的说法相反,在本工作中,提出了 O=N...O 类氢键普遍存在的具体证据。已发现类氢键主要负责同二聚体的特征几何形状。使用 Ne 和 Ar 基质的基质隔离红外光谱和计算,证明了具有类氢键稳定化作用的硝甲烷二聚体的形成。使用分子中的原子量子理论、自然键轨道、能量分解、静电势映射和非共价相互作用分析对同二聚体中的相互作用进行了表征。先前基于分子动力学的研究表明,液态硝甲烷中存在较大的分子间分离,而在气相和液相中红外光谱不变,这可能导致人们假设不存在分子间相互作用。然而,这里呈现的几何形状证实了在这些大于通常的分离距离上氢和类氢键的普遍性。

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