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Ru(II) 染料配合物及其相关配体分子在 Au(111)上的电荷转移相互作用。

Charge transfer interactions of a Ru(II) dye complex and related ligand molecules adsorbed on Au(111).

机构信息

School of Physics and Astronomy, University of Nottingham, Nottingham NG7 2RD, United Kingdom.

出版信息

J Chem Phys. 2011 Oct 28;135(16):164702. doi: 10.1063/1.3656682.

Abstract

The interaction of the dye molecule, N3 (cis-bis(isothiocyanato)bis(2,2(')-bipyridyl-4,4(')-dicarboxylato)-ruthenium(II)), and related ligand molecules with a Au(111) surface has been studied using synchrotron radiation-based electron spectroscopy. Resonant photoemission spectroscopy (RPES) and autoionization of the adsorbed molecules have been used to probe the coupling between the molecules and the substrate. Evidence of charge transfer from the states near the Fermi level of the gold substrate into the lowest unoccupied molecular orbital (LUMO) of the molecules is found in the monolayer RPES spectra of both isonicotinic acid and bi-isonicotinic acid (a ligand of N3), but not for the N3 molecule itself. Calibrated x-ray absorption spectroscopy and valence band spectra of the monolayers reveals that the LUMO crosses the Fermi level of the surface in all cases, showing that charge transfer is energetically possible both from and to the molecule. A core-hole clock analysis of the resonant photoemission reveals a charge transfer time of around 4 fs from the LUMO of the N3 dye molecule to the surface. The lack of charge transfer in the opposite direction is understood in terms of the lack of spatial overlap between the π∗-orbitals in the aromatic rings of the bi-isonicotinic acid ligands of N3 and the gold surface.

摘要

利用基于同步辐射的电子能谱研究了染料分子 N3(顺式-双(异硫氰酸根)双(2,2'()-联吡啶-4,4'()-二羧酸根)-钌(II))和相关配体分子与 Au(111) 表面的相互作用。共振光电子能谱(RPES)和吸附分子的自电离被用来探测分子与基底之间的耦合。在异烟酸和双异烟酸(N3 的配体)单层 RPES 光谱中发现了来自金基底费米能级附近的态到分子最低未占据分子轨道(LUMO)的电荷转移证据,但 N3 分子本身没有。经校准的单层 x 射线吸收光谱和价带光谱表明,在所有情况下 LUMO 都穿过表面的费米能级,表明电荷转移在能量上既可以从分子到表面,也可以从表面到分子。共振光电子的核心空穴时钟分析表明,N3 染料分子的 LUMO 到表面的电荷转移时间约为 4 fs。在相反方向上没有电荷转移可以理解为 N3 的双异烟酸配体的芳香环中的 π∗-轨道与金表面之间缺乏空间重叠。

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