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亚氨基磷烷超强碱配合物与二氧化碳的电子相互作用

Electronic Interactions in Iminophosphorane Superbase Complexes with Carbon Dioxide.

作者信息

Ingrosso Francesca, Ruiz-López Manuel F

机构信息

SRSMC, University of Lorraine , BP 70239, 54506 Vandoeuvre-lès-Nancy, France.

CNRS, UMR 7565 , BP 70239, 54506 Vandoeuvre-lès-Nancy, France.

出版信息

J Phys Chem A. 2018 Feb 15;122(6):1764-1770. doi: 10.1021/acs.jpca.7b11853. Epub 2018 Feb 1.

DOI:10.1021/acs.jpca.7b11853
PMID:29346729
Abstract

Iminophosphoranes or phosphazenes are an important class of compounds with increasing use in synthetic organic chemistry as neutral organic superbases exhibiting low nucleophilicity. Their electronic structure and therefore their properties strongly depend on substitution, but there have been very few theoretical studies devoted to this topic, and more specifically to the formation of electron donor-acceptor complexes of iminophosphoranes with electrophiles. In this work, we have investigated the interaction with carbon dioxide at different ab initio levels. Carbon dioxide usually behaves as a Lewis acid and the reaction with iminiphosphoranes has been described as a nonconventional aza-Wittig process leading to isocyanates. The reaction can be conducted in supercritical CO conditions (carbon dioxide acts as both solvent and reactant), which is a promising strategy in the context of green chemistry. Our calculations have been carried out at the CCSD(T)/aug-cc-pVTZ//MP2/aug-cc-pVTZ level for model systems and at the M06-2X/6-611+G(d,p) level for a larger species used in experiments. The electronic interactions and the interaction energies are analyzed and discussed in detail using the natural bond orbital method. Proton affinities and gas-phase basicities are provided as well.

摘要

亚氨基磷烷或磷腈是一类重要的化合物,在合成有机化学中的应用越来越广泛,它们作为亲核性较低的中性有机超强碱。它们的电子结构以及因此其性质强烈依赖于取代基,但针对该主题,特别是关于亚氨基磷烷与亲电试剂形成电子供体-受体配合物的理论研究非常少。在这项工作中,我们在不同的从头算水平上研究了与二氧化碳的相互作用。二氧化碳通常表现为路易斯酸,与亚氨基磷烷的反应被描述为导致异氰酸酯的非常规氮杂维蒂希反应。该反应可以在超临界二氧化碳条件下进行(二氧化碳既作为溶剂又作为反应物),这在绿色化学背景下是一种有前景的策略。我们针对模型体系在CCSD(T)/aug-cc-pVTZ//MP2/aug-cc-pVTZ水平进行了计算,针对实验中使用的较大物种在M06-2X/6-611+G(d,p)水平进行了计算。使用自然键轨道方法对电子相互作用和相互作用能进行了详细分析和讨论。还提供了质子亲和能和气相碱度。

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