Yang Po-Chun, Yu Kuan-Po, Hsieh Chi-Tien, Zou Junjie, Fang Chia-Te, Liu Hsin-Kuan, Pao Chih-Wen, Deng Liang, Cheng Mu-Jeng, Lin Chun-Yi
Department of Chemistry, National Cheng Kung University No. 1 University Road Tainan 701014 Taiwan
State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences 345 Lingling Road Shanghai 200032 P. R. China.
Chem Sci. 2022 Jul 21;13(33):9637-9643. doi: 10.1039/d2sc02699f. eCollection 2022 Aug 24.
High-spin, late transition metal imido complexes have attracted significant interest due to their group transfer reactivity and catalytic C-H activation of organic substrates. Reaction of a new two-coordinate iron complex, Fe{N( Bu)Dipp} (1, Dipp = 2,6-diisopropylphenyl), with mesitylazide (MesN) afforded a three-coordinate Fe-imidyl complex, Fe{N( Bu)Dipp}([double bond, length as m-dash]NMes) (2). X-ray crystallographic characterization of single crystals of 2 showed a long Fe-N distance of 1.761(1) Å. Combined magnetic and spectroscopic (Mössbauer and X-ray absorption near edge structure spectroscopy, XANES) characterization of 2 suggests that it has an = 2 ground state comprising an = 5/2 Fe(iii) center antiferromagnetically coupled to an = 1/2 imidyl ligand. Reaction of 1 and 1-azidoadamantane (AdN) generated a putative, transient Fe{N( Bu)Dipp}([double bond, length as m-dash]NAd) (3') complex that yielded an intramolecular C-H amination product, Fe{N( Bu)Dipp}{κ-,'-_N(CMeCHNHAd)Dipp} (3). Quantum mechanical calculations further confirmed the spectroscopic assignment of 2 and 3', as well as the differences in their stability and reactivity. Importantly, imidyl radical delocalization onto the mesityl ring significantly increased the stability of 2 and reduced its reactivity toward potential hydrogen atom transfer (HAT) reagents. In contrast, quantum mechanical calculations of 3' revealed that the radical was solely localized on the imidyl N, leading to a high reactivity toward the proximal C-H bond of the N( Bu)Dipp ligand.
高自旋的晚期过渡金属亚胺基配合物因其基团转移反应活性和对有机底物的催化C-H活化作用而备受关注。一种新型的二配位铁配合物Fe{N( Bu)Dipp}(1,Dipp = 2,6-二异丙基苯基)与均三甲苯基叠氮化物(MesN)反应,得到了一种三配位的Fe-亚胺基配合物Fe{N( Bu)Dipp}([双键,长度为m破折号]NMes)(2)。对2的单晶进行X射线晶体学表征显示,Fe-N键长为1.761(1) Å。对2进行的磁性和光谱(穆斯堡尔谱和X射线吸收近边结构光谱,XANES)联合表征表明,它具有一个S = 2的基态,由一个S = 5/2的Fe(iii)中心与一个S = 1/2的亚胺基配体反铁磁耦合而成。1与1-叠氮基金刚烷(AdN)反应生成了一种假定的瞬态Fe{N( Bu)Dipp}([双键,长度为m破折号]NAd)(3')配合物,该配合物产生了一种分子内C-H胺化产物Fe{N( Bu)Dipp}{κ-,'-_N(CMeCHNHAd)Dipp}(3)。量子力学计算进一步证实了2和3'的光谱归属,以及它们在稳定性和反应活性方面的差异。重要的是,亚胺基自由基离域到均三甲苯基环上显著提高了2的稳定性,并降低了其对潜在氢原子转移(HAT)试剂的反应活性。相比之下,对3'的量子力学计算表明,自由基仅定域在亚胺基N上,导致其对N( Bu)Dipp配体的近端C-H键具有高反应活性。