Department of Chemistry , Johns Hopkins University, 3400 North Charles Street, Baltimore, Maryland 21218, United States.
Inorg Chem. 2013 Aug 19;52(16):9574-82. doi: 10.1021/ic401286a. Epub 2013 Aug 5.
The coordination and spin equilibrium of a Ni(II) meso-tetra(4-carboxyphenyl)porphyrin compound, NiP, was quantified both in fluid solution and when anchored to mesoporous, nanocrystalline TiO2 thin films. This comparison provides insights into the relative rate constants for excited-state injection and ligand field population. In the presence of pyridine, the spectroscopic data were consistent with the presence of equilibrium concentrations of a 4-coordinate low-spin S = 0 ((1)A1g) Ni(II) compound and a high-spin S = 1 ((3)B1g) 6-coordinate compound. Temperature-dependent equilibrium constants were consistently smaller for the surface-anchored NiP/TiO2, as were the absolute values of ΔH and ΔS. In the presence of diethylamine (DEA), the ground-state 6-coordinate compound was absent, but evidence for it was present after pulsed light excitation of NiP. Arrhenius analysis of data, measured from -40 to -10 °C, revealed activation energies for ligand dissociation that were the same for the compound in fluid solution and anchored to TiO2, Ea = 6.6 kcal/mol, within experimental error. At higher temperatures, a significantly smaller activation energy of 3.5 kcal/mol was found for NiP(DEA)2/TiO2. A model is proposed wherein the TiO2 surface sterically hinders ligand coordination to NiP. The lack of excited-state electron transfer from Ni(II)P*/TiO2 indicates that internal conversion to ligand field states was at least 10 times greater than that of excited-state injection into TiO2.
镍(II)meso-四(4-羧基苯基)卟啉化合物 NiP 在流体溶液中和锚定到介孔纳米晶 TiO2 薄膜中的配位和自旋平衡均被定量分析。这一比较为激发态注入和配体场填充的相对速率常数提供了深入的了解。在吡啶存在的情况下,光谱数据与 4 配位低自旋 S = 0((1)A1g)Ni(II)化合物和 6 配位高自旋 S = 1((3)B1g)化合物的平衡浓度一致。对于表面锚定的 NiP/TiO2,温度依赖性平衡常数更小,并且 ΔH 和 ΔS 的绝对值也更小。在二乙胺(DEA)存在的情况下,不存在基态 6 配位化合物,但在 NiP 光激发后,存在其存在的证据。在-40 至-10°C 的范围内进行的 Arrhenius 数据分析揭示了配体离解的活化能,对于在流体溶液中和锚定到 TiO2 上的化合物,Ea = 6.6 kcal/mol,在实验误差范围内是相同的。在较高温度下,NiP(DEA)2/TiO2 的活化能明显更小,为 3.5 kcal/mol。提出了一个模型,其中 TiO2 表面空间位阻阻碍了 NiP 的配位。Ni(II)P*/TiO2 中没有发生激发态电子转移,表明配体场态的内转换至少比 TiO2 中激发态注入快 10 倍。