Burkhardt Lukas, Vukadinovic Yannik, Nowakowski Michał, Kalinko Aleksandr, Rudolph Julian, Carlsson Per-Anders, Jacob Christoph R, Bauer Matthias
Department of Chemistry and Center for Sustainable Systems Design, Paderborn University, Warburger Straße 100, 33098 Paderborn, Germany.
Institute of Physical and Theoretical Chemistry, Technische Universität Braunschweig, Gaußstraße 17, 38106 Braunschweig, Germany.
Inorg Chem. 2020 Mar 16;59(6):3551-3561. doi: 10.1021/acs.inorgchem.9b02092. Epub 2020 Mar 3.
While the Hieber anion [Fe(CO)(NO)] has been reincarnated in the last years as an active catalyst in organic synthesis, there is still a debate about the oxidation state of the central Fe atom and the resulting charge of the NO ligand. To shed new light on this question and to understand the Fe-NO interaction in the Hieber anion, it is investigated in comparison to the formal 3d reference Fe(CO) and the formal 3d reference [Fe(CO)] by the combination of valence-to-core X-ray emission spectroscopy (VtC-XES), X-ray absorption near-edge structure spectroscopy (XANES), and high-energy-resolution fluorescence-detected XANES. In order to extract information about the electronic structure, time-dependent density functional theory and ground-state density functional theory calculations are applied. This combination of experimental and computational methods reveals that the electron density at the Fe center of the Hieber resembles that of the isoelectronic [Fe(CO)]. These observations challenge recent descriptions of the Hieber anion and reopen the debate about the experimentally and computationally determined Fe oxidation state and charge on the NO ligand.
尽管希贝尔阴离子[Fe(CO)(NO)]在过去几年中作为有机合成中的一种活性催化剂得以“重生”,但关于中心铁原子的氧化态以及由此产生的NO配体电荷仍存在争议。为了给这个问题带来新的启示并理解希贝尔阴离子中的铁-氮相互作用,通过价到芯X射线发射光谱(VtC-XES)、X射线吸收近边结构光谱(XANES)以及高能分辨率荧光检测XANES相结合的方法,将其与形式上的3d参考Fe(CO)和形式上的3d参考[Fe(CO)]进行比较研究。为了提取有关电子结构的信息,应用了含时密度泛函理论和基态密度泛函理论计算。这种实验和计算方法的结合表明,希贝尔阴离子中铁中心的电子密度与等电子体[Fe(CO)]的电子密度相似。这些观察结果对希贝尔阴离子的近期描述提出了挑战,并重新开启了关于通过实验和计算确定的铁氧化态以及NO配体电荷的争论。