Temperton Robert H, Rosemann Nils W, Guo Meiyuan, Johansson Niclas, Fredin Lisa A, Prakash Om, Wärnmark Kenneth, Handrup Karsten, Uhlig Jens, Schnadt Joachim, Persson Petter
School of Physics and Astronomy , University of Nottingham , Nottingham NG7 2RD , U.K.
Division of Chemical Physics, Chemical Center , Lund University , Box 124, Lund SE-221 00 , Sweden.
J Phys Chem A. 2020 Feb 27;124(8):1603-1609. doi: 10.1021/acs.jpca.0c00803. Epub 2020 Feb 18.
We present the first experimental study of the frontier orbitals in an ultrathin film of the novel hexa-carbene photosensitizer [Fe(btz)], where btz is 3,3'-dimethyl-1,1'-bis(-tolyl)-4,4'-bis(1,2,3-triazol-5-ylidene). Resonant photoelectron spectroscopy (RPES) was used to probe the electronic structure of films where the molecular and oxidative integrities had been confirmed with optical and X-ray spectroscopies. In combination with density functional theory calculations, RPES measurements provided direct and site-selective information about localization and interactions of occupied and unoccupied molecular orbitals. Fe 2p, N 1s, and C 1s measurements selectively probed the metal, carbene, and side-group contributions revealing strong metal-ligand orbital mixing of the frontier orbitals. This helps explain the remarkable photophysical properties of iron-carbenes in terms of unconventional electronic structure properties and favorable metal-ligand bonding interactions-important for the continued development of these type of complexes toward light-harvesting and light-emitting applications.
我们展示了对新型六卡宾光敏剂[Fe(btz)]超薄薄膜中前沿轨道的首次实验研究,其中btz为3,3'-二甲基-1,1'-双(-甲苯基)-4,4'-双(1,2,3-三唑-5-亚基)。共振光电子能谱(RPES)用于探测薄膜的电子结构,其分子和氧化完整性已通过光学和X射线光谱法得到证实。结合密度泛函理论计算,RPES测量提供了有关占据和未占据分子轨道的定位和相互作用的直接和位点选择性信息。Fe 2p、N 1s和C 1s测量选择性地探测了金属、卡宾和侧基的贡献,揭示了前沿轨道强烈的金属-配体轨道混合。这有助于从非常规电子结构性质和有利的金属-配体键合相互作用方面解释铁卡宾显著的光物理性质,这对于这类配合物在光捕获和发光应用方面的持续发展很重要。