Department of Chemistry and Biochemistry, University of South Carolina, Columbia, SC 29208, USA.
Angew Chem Int Ed Engl. 2023 Jul 10;62(28):e202304960. doi: 10.1002/anie.202304960. Epub 2023 May 30.
Stabilizing nitrogen pnictogen bond interactions were measured using molecular rotors. Intramolecular C=O⋅⋅⋅N interactions were formed in the bond rotation transition states which lowered the rotational barriers and increased the rates of rotation, as measured by EXSY NMR. The pnictogen interaction energies show a very strong correlation with the positive electrostatic potential on nitrogen, which was consistent with a strong electrostatic component. In contrast, the NBO perturbation and pyramidalization analyses show no correlation, suggesting that the orbital-orbital component is minor. The strongest C=O⋅⋅⋅N pnictogen interactions were comparable to C=O⋅⋅⋅C=O interactions and were stronger than C=O⋅⋅⋅Ph interactions, when measured using the same N-phenylimide rotor system. The ability of the nitrogen pnictogen interactions to stabilize transition states and enhance kinetic processes demonstrates their potential in catalysis and reaction design.
使用分子转子测量了稳定的氮磷键相互作用。分子转子在键旋转过渡态中形成了分子内的 C=O⋅⋅⋅N 相互作用,降低了旋转势垒,提高了旋转速率,这可以通过 EXSY NMR 来测量。磷氮相互作用能与氮上的正静电势能呈很强的相关性,这与很强的静电分量一致。相比之下,NBO 微扰和三角化分析没有相关性,表明轨道-轨道分量较小。使用相同的 N-苯基酰亚胺转子系统测量时,最强的 C=O⋅⋅⋅N 磷氮相互作用与 C=O⋅⋅⋅C=O 相互作用相当,且比 C=O⋅⋅⋅Ph 相互作用更强。氮磷键相互作用稳定过渡态和增强动力学过程的能力证明了它们在催化和反应设计中的潜力。