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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Effect of dispersion on surface interactions of cobalt(n) octaethylporphyrin monolayer on Au(111) and HOPG(0001) substrates: a comparative first principles study
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Effect of dispersion on surface interactions of cobalt(n) octaethylporphyrin monolayer on Au(111) and HOPG(0001) substrates: a comparative first principles study

机译:分散对Au(111)和HOPG(0001)衬底上钴(n)八乙基卟啉钴单层表面相互作用的影响:对比性第一性原理研究

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A density functional theory study of a cobalt(II) octaethylporphyrin (CoOEP) monolayer on Au(111) and HOPG(0001) surfaces was performed under periodic boundary conditions. Calculations with and without dispersion corrections are performed and the effect of van der Waals forces on the interface properties is analyzed. Calculations have determined that the CoOEP molecule tends to bind at the 3-fold and the 6-fold center sites on Au(111) and HOPG(0001), respectively. Geometric optimizations at the center binding sites have indicated that the porphyrin molecules (in the monolayer) lie flat on both substrates. Calculations also reveal that the CoOEP monolayer binds slightly more strongly to Au(111) than to HOPG(0001). Charge density difference plots disclose that charge is redistributed mostly around the porphyrin plane and the first layer of the substrates. Dispersion interactions cause a larger substrate to molecule charge pushback on Au(111) than on HOPG. CoOEP adsorption tends to lower the work functions of either substrate, qualitatively agreeing with the experimental photoelectron spectroscopic data. Comparison of the density of states (DOS) of the isolated CoOEP molecule with that on gold and HOPG substrates showed significant band shifts around the Fermi energy due to intermotecular orbital hybridization. Simulated STM images were plotted with the Tersoff-Hamann approach using the local density of states, which also agree with the experimental results. This study elucidates the role of dispersion for better describing porphyrin-substrate interactions. A DFT based overview of geometric, adsorption and electronic properties of a porphyrin monolayer on conductive surfaces is presented.
机译:在周期性边界条件下,对Au(111)和HOPG(0001)表面上的钴(II)八乙基卟啉(CoOEP)单层进行了密度泛函理论研究。进行带有和不带有色散校正的计算,并分析范德华力对界面特性的影响。计算已确定,CoOEP分子倾向于分别在Au(111)和HOPG(0001)的3倍和6倍中心位点结合。中心结合位点的几何优化表明,卟啉分子(在单层中)在两个底物上均平放。计算还表明,CoOEP单层与Au(111)的结合比与HOPG(0001)的结合稍强。电荷密度差图显示电荷主要在卟啉平面和基底的第一层周围重新分布。分散相互作用导致与HOPG相比,更大的底物对Au(111)的分子电荷推回。 CoOEP吸附趋于降低任一衬底的功函数,在质量上与实验光电子能谱数据一致。分离的CoOEP分子与金和HOPG底物上的状态密度(DOS)的比较显示,由于分子间的轨道杂交,费米能量附近出现了明显的带移。模拟的STM图像使用Tersoff-Hamann方法绘制的局部状态密度进行绘制,这也与实验结果一致。这项研究阐明了分散作用对于更好地描述卟啉-底物相互作用的作用。提出了基于DFT的卟啉单层在导电表面上的几何,吸附和电子性质的概述。

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