Hartmann Charlotte U, Reimann Marc, Cula Beatrice, Kaupp Martin, Limberg Christian
Institut für Chemie, Humboldt-Universität zu Berlin, Brook-Taylor-Straße 2, 12489, Berlin, Germany.
Institut für Chemie Theoretische Chemie/Quantenchemie, Sekr. C7, Technische Universität Berlin, Straße des 17. Juni 135, 10623, Berlin, Germany.
Chemistry. 2024 Oct 11;30(57):e202402154. doi: 10.1002/chem.202402154. Epub 2024 Sep 23.
Aiming at intramolecular frustrated Lewis pairs (FLPs) based on soft Lewis acidic bismuth centers, a phosphine function was combined with a dichloridobismuthane unit on a phenylene backbone utilizing a scrambling approach. The reaction between two equivalents of BiCl and (o-(PhP)CH)Bi yielded (o-(PhP)CH)BiCl(THF), the structure of which indicated BiP interactions and thus a pronounced Lewis acidity at the bismuth center that was confirmed by the Gutmann-Beckett method. However, the system turned out to be insufficient to be utilized for FLP reactivity. Hence, the chloride ligands were exchanged by iodide and CF substituents, respectively. Despite a lower electronegativity the iodide compound exhibits a shorter BiP contact, while the CF substituents led to a further decrease of the Lewis acidity, despite their high group electronegativity. DFT calculations rationalized this by a quenching of the Lewis acidity inherent to the σ*(Bi-C) orbital by negative hyperconjugation from occupied p-orbitals at the F atoms. Furthermore, it turned out that the strength of the covalent Bi-X σ-bond is a more important factor than the charge at Bi in determining the energetic accessibility and thus Lewis acidity of the antibonding σ*(Bi-C) orbital.
针对基于软路易斯酸性铋中心的分子内受阻路易斯对(FLP),利用一种加扰方法将膦官能团与亚苯基主链上的二氯化铋单元相结合。两当量的BiCl与(o-(PhP)CH)Bi之间的反应生成了(o-(PhP)CH)BiCl(THF),其结构表明存在BiP相互作用,因此铋中心具有显著的路易斯酸性,这通过古特曼 - 贝克特方法得到了证实。然而,该体系被证明不足以用于FLP反应性。因此,分别用碘化物和CF取代基交换了氯配体。尽管碘化物的电负性较低,但碘化物化合物表现出较短的BiP接触,而CF取代基尽管具有较高的基团电负性,但导致路易斯酸性进一步降低。密度泛函理论计算通过F原子上占据的p轨道的负超共轭作用使σ*(Bi - C)轨道固有的路易斯酸性猝灭来解释这一现象。此外,结果表明,在决定反键σ*(Bi - C)轨道的能量可及性从而路易斯酸性方面,共价Bi - X σ键的强度比铋上的电荷是一个更重要的因素。