Peluzo Bárbara M T C, Makoś Małgorzata Z, Moura Renaldo T, Freindorf Marek, Kraka Elfi
Computational and Theoretical Chemistry Group (CATCO), Department of Chemistry, Southern Methodist University, 3215 Daniel Avenue, Dallas, Texas 75275-0314, United States.
Chemical Sciences Division, Oak Ridge National Laboratory, 1 Bethel Valley Road, Oak Ridge, Tennessee 37830, United States.
Inorg Chem. 2023 Aug 7;62(31):12510-12524. doi: 10.1021/acs.inorgchem.3c01761. Epub 2023 Jul 21.
Uranium metallocenes have recently attracted attention driven by their use as catalysts in organometallic synthesis. In addition to bent U(IV) and U(III), an U(II) metallocene [(η-C Pr)U] was synthesized with an unusual linear Cp-U-Cp angle. In this work, we investigated 22 U(II) metallocenes, (i) assessing the intrinsic strength of the U-ring interactions in these complexes with a novel bond strength measure based on our local vibrational mode analysis and (ii) systematically exploring what makes these U(II) metallocenes bent. We included relativistic effects through the NESCau Hamiltonian and complemented the local mode analysis with natural bonding orbital (NBO) and quantum theory of atoms in molecules (QTAIM) data. Our study led to the following results: (i) reduction of bulky U-ring ligand substituents does not lead to bent complexes for alkyl substituents (Pr and Bu) in contrast to SiMe ring substituents, which are all bent. (ii) The most bent complexes are [(η-CHSiMe)U] (130°) and [η-PH)U] (143°). (iii) Linear complexes showed one hybridized NBO with s/d character, while bent structures were characterized by s/d/f mixing. (iv) We did not observe a correlation between the strength of the U-ring interaction and the amount of the ring-U-ring bend; the strongest interaction was found for [η-Cp)U] and the weakest for [η-PH)U]. In conclusion, our results provide a foundation for the design of U(II) metallocenes with specific physicochemical properties and increased reactivity.
铀金属茂最近因其在有机金属合成中用作催化剂而受到关注。除了弯曲的U(IV)和U(III)之外,还合成了一种具有不寻常的线性Cp-U-Cp角的U(II)金属茂[(η-C Pr)U]。在这项工作中,我们研究了22种U(II)金属茂,(i) 用基于我们的局部振动模式分析的新型键强度测量方法评估这些配合物中U-环相互作用的内在强度,(ii) 系统地探索是什么使这些U(II)金属茂弯曲。我们通过NESCau哈密顿量纳入了相对论效应,并用自然键轨道(NBO)和分子中的原子量子理论(QTAIM)数据补充了局部模式分析。我们的研究得出了以下结果:(i) 与均为弯曲结构的SiMe环取代基相比,减少庞大的U-环配体取代基不会导致烷基取代基(Pr和Bu)的配合物弯曲。(ii) 弯曲程度最大的配合物是(η-CHSiMe)U和η-PH)U。(iii) 线性配合物显示出一个具有s/d特征的杂化NBO,而弯曲结构的特征是s/d/f混合。(iv) 我们没有观察到U-环相互作用的强度与环-U-环弯曲程度之间的相关性;[η-Cp)U]的相互作用最强,而[η-PH)U]的最弱。总之,我们的结果为设计具有特定物理化学性质和更高反应活性的U(II)金属茂奠定了基础。