Guo Meiyuan, Prakash Om, Fan Hao, de Groot Lisa H M, Hlynsson Valtýr Freyr, Kaufhold Simon, Gordivska Olga, Velásquez Nicolás, Chabera Pavel, Glatzel Pieter, Wärnmark Kenneth, Persson Petter, Uhlig Jens
College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, P. R. China.
Phys Chem Chem Phys. 2020 Apr 28;22(16):9067-9073. doi: 10.1039/c9cp06309a. Epub 2020 Apr 16.
Iron centered N-heterocyclic carbene (Fe-NHC) complexes have shown long-lived excited states with charge transfer character useful for light harvesting applications. Understanding the nature of the metal-ligand bond is of fundamental importance to rationally tailor the properties of transition metal complexes. The high-energy-resolution fluorescence detected X-ray absorption near edge structure (HERFD-XANES) has been used to probe the valence orbitals of three carbene complexes, Fe(bpy)(btz) (bpy = 2,2'-bipyridine, btz = 3,3'-dimethyl-1,1'-bis(p-tolyl)-4,4'-bis(1,2,3-triazol-5-ylidene)), Fe(btz), and [Fe(phtmeimb)]PF (phtmeimb = [phenyl(tris(3-methylimidazol-2-ylidene))borate]). The multiconfigurational restrict active space (RAS) approach has been used to simulate the metal K pre-edge X-ray absorption spectroscopy of these carbene complexes, and have reproduced the metal K pre-edge spectral features in terms of relative intensity and peak positions. The evident intensity difference between the Fe and the other two Fe complexes has been elucidated with different intensity mechanisms in the transition. The smaller splitting between the t and e character peak for Fe(btz) has been observed in the experimental measurements and been reproduced in the RAS calculations. The results show how the combination of experimental HERFD-XANES measurements and ab initio RAS simulations can give quantitative evaluation of the orbital interactions between metal and ligands for such large and strongly interacting systems and thus allow to understand and predict properties of novel complexes.
以铁为中心的氮杂环卡宾(Fe-NHC)配合物已显示出具有电荷转移特性的长寿命激发态,这对于光捕获应用很有用。了解金属-配体键的性质对于合理调整过渡金属配合物的性质至关重要。高能量分辨率荧光检测X射线吸收近边结构(HERFD-XANES)已用于探测三种卡宾配合物Fe(bpy)(btz)(bpy = 2,2'-联吡啶,btz = 3,3'-二甲基-1,1'-双(对甲苯基)-4,4'-双(1,2,3-三唑-5-亚基))、Fe(btz)和[Fe(phtmeimb)]PF(phtmeimb = [苯基(三(3-甲基咪唑-2-亚基))硼酸盐])的价轨道。多组态限制活性空间(RAS)方法已用于模拟这些卡宾配合物的金属K边前X射线吸收光谱,并在相对强度和峰位置方面再现了金属K边前光谱特征。通过跃迁中不同的强度机制阐明了Fe与其他两种Fe配合物之间明显的强度差异。在实验测量中观察到Fe(btz)的t和e特征峰之间较小的分裂,并在RAS计算中得到了再现。结果表明,实验性HERFD-XANES测量和从头算RAS模拟的结合如何能够对如此大且相互作用强烈的体系中金属与配体之间的轨道相互作用进行定量评估,从而有助于理解和预测新型配合物的性质。