Cai Sheng, Shokhireva Tatjana Kh, Lichtenberger Dennis L, Walker F Ann
Department of Chemistry, University of Arizona, Tucson, Arizona 85721-0041, USA.
Inorg Chem. 2006 May 1;45(9):3519-31. doi: 10.1021/ic0515352.
The NMR and EPR spectra of two bisimidazole and three bispyridine complexes of tetraphenylchlorinatoiron(III), [(TPC)Fe(L)2]+ (L = Im-d4, 2-MeHIm, 4-Me2NPy, Py, and 4-CNPy), have been investigated. The full resonance assignments of the [(TPC)Fe(L)2]+ complexes of this study have been made from correlation spectroscopy (COSY) and nuclear Overhauser enhancement spectroscopy (NOESY) experiments and Amsterdam density functional (ADF) calculations. Unlike the [(OEC)Fe(L)2]+ complexes reported previously (Cai, S.; Lichtenberger, D. L.; Walker, F. A. Inorg. Chem. 2005, 44, 1890-1903), the NMR data for the [(TPC)Fe(L)2]+ complexes of this study indicate that the ground state is S = 1/2 for each bisligand complex, whereas a higher spin state was present at NMR temperatures for the Py and 4-CNPy complexes of (OEC)Fe(III). The pyrrole-8,17 and pyrroline-H of all [TPCFe(L)2]+ show large magnitude chemical shifts (hence indicating large spin density on the adjacent carbons that are part of the pi system), while pyrrole-12,13-CH2 and -7,18-CH2 protons show much smaller chemical shifts, as predicted by the spin densities obtained from ADF calculations. The magnitude of the chemical shifts decreases with decreasing donor ability of the substituted pyridine ligands, with the nonhindered imidazole ligand having slightly larger magnitude chemical shifts than the most basic pyridine, even though its basicity is significantly lower (4-Me2NPyH+ pKa = 9.7, H2Im+ pKa = 6.65 (adjusted for the statistical factor of 2 protons)). The temperature dependence of the chemical shifts of all but the 4-Me2NPy bisligand complexes studied over the temperature range of the NMR investigations shows that they have mixed (dxy)2(dxz,dyz)3/(dxzdyz)4(dxy)1 electron configurations that cannot be resolved by temperature-dependent fitting of the proton chemical shifts, with an S = 3/2 excited state in each case that in most cases lies at more than kT at room temperature above the ground state. The observed pattern of chemical shifts of the 4-CNPy complex and analysis of the temperature dependence indicate that it has a pure (dxzdyz)4(dxy)1 ground state and that it is ruffled, because ruffling mixes the a(2u)(pi)-like orbital of the chlorin into the singly occupied molecular orbital (SOMO). This mixing accounts for the negative chemical shift of the pyrroline-H (-6.5 ppm at -40 degrees C) and thus the negative spin density at the pyrroline-alpha-carbons, but the mixing is not to the same extent as observed for [(TPC)Fe(t-BuNC)2]+, whose pyrroline-H chemical shift is -36 ppm at 25 degrees C (Simonneaux, G.; Kobeissi, M. J. Chem. Soc., Dalton Trans. 2001, 1587-1592). Peak assignments for high-spin (TPC)FeCl have been made by saturation transfer techniques that depend on chemical exchange between this complex and its bis-4-Me2NPy adduct.
已对四苯基氯铁(III)的两种双咪唑和三种联吡啶配合物[(TPC)Fe(L)₂]⁺(L = Im-d₄、2-MeHIm、4-Me₂NPy、Py和4-CNPy)的核磁共振(NMR)和电子顺磁共振(EPR)光谱进行了研究。本研究中[(TPC)Fe(L)₂]⁺配合物的完整共振归属是通过相关光谱(COSY)、核Overhauser增强光谱(NOESY)实验以及阿姆斯特丹密度泛函(ADF)计算得出的。与先前报道的[(OEC)Fe(L)₂]⁺配合物(Cai, S.; Lichtenberger, D. L.; Walker, F. A. Inorg. Chem. 2005, 44, 1890 - 1903)不同,本研究中[(TPC)Fe(L)₂]⁺配合物的NMR数据表明,每个双配体配合物的基态为S = 1/2,而对于(OEC)Fe(III)的Py和4-CNPy配合物,在NMR温度下存在更高的自旋态。所有[TPCFe(L)₂]⁺的吡咯-8,17和吡咯啉-H显示出较大的化学位移(因此表明相邻碳上的自旋密度较大,这些碳是π体系的一部分),而吡咯-12,13-CH₂和-7,18-CH₂质子的化学位移要小得多,这与从ADF计算得到的自旋密度预测一致。化学位移的大小随着取代吡啶配体给体能力的降低而减小,无阻碍的咪唑配体的化学位移大小比最碱性的吡啶略大,尽管其碱性明显较低(4-Me₂NPyH⁺的pKa = 9.7,H₂Im⁺的pKa = 6.65(针对2个质子的统计因子进行了调整))。在NMR研究的温度范围内,除4-Me₂NPy双配体配合物外,所有研究的配合物化学位移的温度依赖性表明它们具有混合的(dxy)²(dxz,dyz)³/(dxzdyz)⁴(dxy)¹电子构型,通过质子化学位移的温度依赖性拟合无法分辨,每种情况下都有一个S = 3/2的激发态,在大多数情况下,该激发态在室温下比基态高出超过kT。4-CNPy配合物观察到的化学位移模式以及温度依赖性分析表明它具有纯的(dxzdyz)⁴(dxy)¹基态且呈褶皱状,因为褶皱将二氢卟吩的a(2u)(π)类轨道混入单占据分子轨道(SOMO)中。这种混合解释了吡咯啉-H的负化学位移(在-40℃时为-6.5 ppm)以及因此在吡咯啉-α-碳上的负自旋密度,但这种混合程度与[(TPC)Fe(t-BuNC)₂]⁺不同,[(TPC)Fe(t-BuNC)₂]⁺在25℃时吡咯啉-H的化学位移为-36 ppm(Simonneaux, G.; Kobeissi, M. J. Chem. Soc., Dalton Trans. 2001, 1587 - 1592)。高自旋(TPC)FeCl的峰归属是通过依赖于该配合物与其双-4-Me₂NPy加合物之间化学交换的饱和转移技术进行的。