National High Magnetic Field Laboratory , Florida State University , Tallahassee , Florida 32310 , United States.
EPR Research Group , Max Planck Institute for Chemical Energy Conversion , Stiftstraße 34-36 , D-45470 Mülheim Ruhr , Germany.
Inorg Chem. 2020 Jan 21;59(2):1075-1090. doi: 10.1021/acs.inorgchem.9b02635. Epub 2020 Jan 7.
Metallocorroles wherein the metal ion is Mn and formally Fe are studied here using field- and frequency-domain electron paramagnetic resonance techniques. The Mn corrole, Mn(tpfc) (tpfc = 5,10,15-tris(pentafluorophenyl)corrole trianion), exhibits the following = 2 zero-field splitting (zfs) parameters: = -2.67(1) cm, || = 0.023(5) cm. This result and those for other Mn tetrapyrroles indicate that when ≈ - 2.5 ± 0.5 cm for 4- or 5-coordinate and ≈ - 3.5 ± 0.5 cm for 6-coordinate complexes, the ground state description is [Mn(Cor)] or [Mn(P)] (Cor = corrole, P = porphyrin). The situation for formally Fe corroles is more complicated, and it has been shown that for Fe(Cor)X, when X = Ph (phenyl), the ground state is a spin triplet best described by [Fe(Cor)], but when X = halide, the ground state corresponds to [Fe(Cor)], wherein an intermediate spin ( = /) Fe is antiferromagnetically coupled to a corrole radical dianion ( = /) to also give an = 1 ground state. These two valence isomers can be distinguished by their zfs parameters, as determined here for Fe(tpc)X, X = Ph, Cl (tpc = 5,10,15-triphenylcorrole trianion). The complex with axial phenyl gives = 21.1(2) cm, while that with axial chloride gives = 14.6(1) cm. The value for Fe(tpc)Ph is in rough agreement with the range of values reported for other Fe complexes. In contrast, the value for Fe(tpc)Cl is inconsistent with an Fe description and represents a different type of iron center. Computational studies corroborate the zfs for the two types of iron corrole complexes. Thus, the zfs of metallocorroles can be diagnostic as to the electronic structure of a formally high oxidation state metallocorrole, and by extension to metalloporphyrins, although such studies have yet to be performed.
本文使用磁场和频域电子顺磁共振技术研究了金属离子为 Mn 且形式上为 Fe 的金属卟啉。Mn 卟啉,Mn(tpfc)(tpfc=5,10,15-三(五氟苯基)卟啉三阴离子),表现出以下零场分裂(zfs)参数: =-2.67(1)cm,||=0.023(5)cm。这一结果和其他 Mn 四吡咯的结果表明,当 4 或 5 配位时, ≈-2.5±0.5cm,当 6 配位时, ≈-3.5±0.5cm,其基态描述为[Mn(Cor)]或[Mn(P)](Cor=卟啉,P=卟啉)。形式上为 Fe 的卟啉的情况更为复杂,已经表明对于 Fe(Cor)X,当 X=Ph(苯基)时,基态是自旋三重态,最好用[Fe(Cor)]描述,但当 X=卤化物时,基态对应于[Fe(Cor)],其中中间自旋( = /)Fe 与卟啉自由基二阴离子( = /)反铁磁耦合,也给出一个 = 1 的基态。这两种价态异构体可以通过它们的 zfs 参数来区分,如这里对于 Fe(tpc)X,X=Ph,Cl(tpc=5,10,15-三苯基卟啉三阴离子)所确定的那样。轴向苯基的复合物给出 = 21.1(2)cm,而轴向氯的复合物给出 = 14.6(1)cm。Fe(tpc)Ph 的 值与其他 Fe 配合物报道的范围大致相符。相比之下,Fe(tpc)Cl 的 值与 Fe 的描述不一致,代表了一种不同类型的铁中心。计算研究证实了两种类型的铁卟啉配合物的 zfs。因此,金属卟啉的 zfs 可以作为一种形式上的高氧化态金属卟啉的电子结构的诊断手段,并可以扩展到金属卟啉,尽管尚未进行此类研究。