Silvernail Nathan J, Pavlik Jeffrey W, Noll Bruce C, Schulz Charles E, Scheidt W Robert
Contribution from the Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana 46556, USA.
Inorg Chem. 2008 Feb 4;47(3):912-20. doi: 10.1021/ic701700p. Epub 2008 Jan 4.
The synthesis, characterization, and X-ray structures of three low-spin (nitrosyl)iron(II) tetraarylporphyrinates, [Fe(TpXPP)(NO)(1-MeIm)], where X = F (in a triclinic and a monoclinic form) and OCH(3) are reported. All three molecules, at 100 K, have a single orientation of NO. These structures are the first examples of ordered NO's in [Fe(Porph)(NO)(1-MeIm)] complexes. The three new derivatives have similar structural features including a previously unnoted "bowing" of the N(NO)-Fe-N(Im) angle caused by a concerted tilting of the axial Fe-N(NO) and Fe-N(Im) bonds. Structural features such as the displacement of Fe out of the mean porphyrin plane toward NO, tilting of the Fe-N(NO) bond off the heme normal, and the asymmetry of the Fe-N(por) bonds further strengthen and confirm observations from earlier studies. The [Fe(TpXPP)(NO)(1-MeIm)] complexes were also studied at temperatures between 125 and 350 K to investigate temperature-dependent variations and trends in the coordination group geometry. At varying temperatures (above 150 K), all three derivatives display a second orientation of the NO ligand. The population and depopulation of this second orientation are thermally driven, with no apparent hysteresis. Crystal packing appears to be the significant feature in defining the order/disorder of the NO ligand. The length of the bond trans to NO, Fe-N(Im), was also found to be sensitive to temperature variation. The Fe-N(Im) bond length increases with increased temperature, whereas no other bonds change appreciably. The temperature-dependent Fe-N(Im) bond length change and cell volume changes are consistent with a "soft" Fe-N(Im) bond. Variable-temperature measurements show that the N-O stretching frequency changes with the Fe-N(Im) bond length. Temperature-dependent changes in the Fe-NIm bond length and N-O stretching frequency were also found to be completely reversible with no apparent hysteresis.
报道了三种低自旋(亚硝酰基)铁(II)四芳基卟啉配合物[Fe(TpXPP)(NO)(1-MeIm)]的合成、表征及X射线结构,其中X = F(有三斜晶系和单斜晶系两种形式)和OCH(3)。在100 K时,所有这三种分子中的NO都具有单一取向。这些结构是[Fe(Porph)(NO)(1-MeIm)]配合物中有序NO的首个实例。这三种新衍生物具有相似的结构特征,包括由于轴向Fe-N(NO)键和Fe-N(Im)键的协同倾斜导致的N(NO)-Fe-N(Im)角出现之前未被注意到的“弯曲”。诸如Fe偏离卟啉平均平面朝向NO的位移、Fe-N(NO)键偏离血红素法线的倾斜以及Fe-N(por)键的不对称性等结构特征进一步强化并证实了早期研究的观察结果。还在125至350 K的温度范围内对[Fe(TpXPP)(NO)(1-MeIm)]配合物进行了研究,以考察配位基团几何结构随温度的变化及趋势。在不同温度(高于150 K)下,所有这三种衍生物的NO配体都呈现出第二种取向。这种第二种取向的出现和消失是由热驱动的,没有明显的滞后现象。晶体堆积似乎是定义NO配体有序/无序的重要特征。还发现与NO相对的键Fe-N(Im)的长度对温度变化敏感。Fe-N(Im)键长随温度升高而增加,而其他键没有明显变化。Fe-N(Im)键长随温度的变化以及晶胞体积的变化与“软”的Fe-N(Im)键一致。变温测量表明,N-O伸缩频率随Fe-N(Im)键长而变化。还发现Fe-NIm键长和N-O伸缩频率随温度的变化是完全可逆的,没有明显的滞后现象。