论文标题

供体受感受器的共吸附比控制AG上二维碱有机网络的结构和电子性质(100)

Donor-acceptor co-adsorption ratio controls structure and electronic properties of two-dimensional alkali-organic networks on Ag(100)

论文作者

Sohail, B., Blowey, P. J., Rochford, L. A., Ryan, P. T. P., Duncan, D. A., Lee, T. -L., Starrs, P., Costantini, G., Woodruff, D. P., Maurer, R. J.

论文摘要

结果呈现出对共掺杂电子粉化碱原子的影响的详细组合实验和理论研究,以及原型电子受体分子TCNQ(7,7,8,8-8,8-二乙酸喹啉二二甲烷)对Ag(100)表面的影响。通过扫描隧道显微镜,低能电子衍射和软X射线光电子光谱扫描隧道显微镜,表征了几个共吸吸收阶段。使用正常的入射X射线常驻波(NIXSW)测量获得定量结构数据,并与密度功能理论(DFT)计算的结果进行了比较。通常,对于定量结构,实现了理论和实验之间的良好一致性,尽管预测了碱原子高度对某些方法的挑战。吸附结构敏感地取决于分子 - 金属电荷转移和远距离色散力的相互作用,这些分子电荷转移和远程分散力受到碱原子与TCNQ之间的组成比的控制。 K和CS之间原子大小的巨大差异对稳定性的影响可忽略不计,而K:TCNQ的比率从1:4到1:1的比率从1:4到1:1导致分子 - 金属相互作用强度的弱化,以支持在二维碱中内部较强的离子键。预测工作函数对碱供体-TCNQ受体共吸附比的强烈依赖性。

The results are presented of a detailed combined experimental and theoretical investigation of the influence of coadsorbed electron-donating alkali atoms and the prototypical electron acceptor molecule TCNQ (7,7,8,8-tetracyanoquinodimethane) on the Ag(100) surface. Several coadsorption phases were characterised by scanning tunnelling microscopy, low energy electron diffraction, and soft-X-ray photoelectron spectroscopy. Quantitative structural data were obtained using normal incidence X-ray standing wave (NIXSW) measurements and compared with the results of density functional theory (DFT) calculations using several different methods of dispersion correction. Generally good agreement between theory and experiment was achieved for the quantitative structures, albeit with prediction of the alkali atom heights being challenging for some methods. The adsorption structures depend sensitively on the interplay of molecule-metal charge transfer and long-range dispersion forces, which are controlled by the composition ratio between alkali atoms and TCNQ. The large difference in atomic size between K and Cs has negligible effects on stability, whereas increasing the ratio of K:TCNQ from 1:4 to 1:1 leads to a weakening of molecule-metal interaction strength in favour of stronger ionic bonds within the two-dimensional alkali-organic network. A strong dependence of the work function on the alkali donor-TCNQ acceptor co-adsorption ratio is predicted.

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