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首页> 外文期刊>ACS Omega >Synthesis and Computational and Experimental Investigations of a para-Nicotinic Acid-Bridged Dirhenium(I) Dimer Complex
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Synthesis and Computational and Experimental Investigations of a para-Nicotinic Acid-Bridged Dirhenium(I) Dimer Complex

机译:对烟酸桥桥(I)二聚体复合物的合成和计算和实验研究

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The Re(I) dimer complex, [fac (CO)_(3)(phen)Re1-N (py)COORe2(phen)fac (CO)_(3)]~(+) (py = pyridine; phen = 1,10-phenanthroline), contains two different Re(I) centers 9.3 ? apart, one with a nitrogen donor and the other with an acetate donor from the bridging isonicotinate ligand. The complexes were characterized by ~(1)H NMR, UV–vis, fluorescence, and IR spectroscopy, elemental analysis, and single-crystal X-ray diffraction. The absorption and emission properties of the dimer dominated by charge transfer transitions are analyzed with respect to those of the monomers, [fac (CO)_(3)(phen)Re-N(pyCOOCH_(3))]~(+) and [fac (CO)_(3)(phen)ReOOCCH_(3)]. Spectral comparison of these three complexes results in the unexpected finding that the dimer emission (575 nm) occurs near that of the nicotinate-containing monomer (580 nm) rather than near the lower energy-emitting state (650 nm) of the acetate-containing monomer. Density functional theory (DFT) calculations elucidate this unusual emission behavior. The geometries of the dimer and two monomers are optimized in the singlet ground and lowest-energy triplet excited states (LLTS’s) to interpret absorption and emission behaviors, respectively. The singlet excited states calculated using time-dependent DFT correlate well with the absorption spectra in the lowest-energy and other major electronic transitions. The energy gaps and low-lying singlet excited states of the dimer are close to those of the acetate-containing monomer. The lowest-energy Franck–Condon triplet excited state of the dimer arising from electronic transitions localized on the acetate moiety is unstable. The next higher Franck–Condon triplet excited state arises from long-range charge transfer transition, and its energy is close to that of the nicotinate-containing monomer. Optimization of the dimer LLTS yields a stable state based on a long-range charge transfer transition involving occupied orbitals partially localized on the bridging nicotinate moiety. The LLTS energies of the dimer and nicotinate-containing monomer are in very good agreement as are the emission energies of these complexes. The correlated spectroscopic and computational results corroborate to the understanding of charge transfer states and transitions toward the development of photosensitive compounds for photoelectrochemical solar energy conversion cells.
机译:Re(i)二聚体复合物,[ FAC(CO)_(3)(Phen)Re1- N(py)Coore2(pen) Fac(Co)_(3)]〜( +)(py =吡啶; phen = 1,10菲咯啉),含有两个不同的Re(i)中心9.3?除了氮气供体和另一个具有醋酸纤维的乙酸供体的一个。该配合物的特征在于〜(1)H NMR,UV-Vis,荧光和IR光谱,元素分析和单晶X射线衍射。通过电荷转移转变为主的二聚体的吸收和排放性能分析单体,[ FAC(CO)_(3)(Phen)Re-N(PycoOch_(3))]〜( +)和[ fac(co)_(3)(phen)Reoocch_(3)]。这三个复合物的光谱比较导致意外发现二聚体发射(575nm)在含烟酸烟酸的单体(580nm)附近而不是靠近含醋酸酯的较低能量发光状态(650nm)单体。密度函数理论(DFT)计算阐明这种不寻常的排放行为。二聚体和两种单体的几何形状在单线时间和最低能量三重态激发态(LLTS)中优化,以分别解释吸收和排放行为。使用时间依赖的DFT计算的单线兴奋状态与最低能量和其他主要电子转换中的吸收光谱相关。二聚体的能量间隙和低位单次激发态接近含乙酸盐单体的单体。从醋酸酯部分局部化的电子转换产生的二聚体的最低能量Franck-Condon三重态激发状态是不稳定的。下一个更高的Franck-Condon三重态激发状态从远程电荷转移转变产生,其能量接近含烟酸尼透明酸的单体。二聚体LLT的优化基于远程电荷转移转变产生稳定的状态,该远程电荷转移涉及部分地定位在桥接烟蛋白部分上的占用轨道。二聚体和含烟酸尼酸酐的单体的LLTS能量非常良好,因此这些配合物的发射能量也是如此。相关光谱和计算结果证实了对电荷转移状态的理解,并转变光敏化合物的光电子化学太阳能转化细胞的发展。

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