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Using irradiation effect to study the disparate anchoring stabilities of polar-organic molecules adsorbed on bulk and thin-film metal surfaces
期刊文章

Using irradiation effect to study the disparate anchoring stabilities of polar-organic molecules adsorbed on bulk and thin-film metal surfaces

K. Arumugam, H.-M. Chen, J.-H. Dai, M.-F. Gao, A. Goyal, M.-K. Lin, Y. Nakayama, T.-W. Pi, S. Metz, T.A. Papadopoulos, …
Applied Surface Science, 卷.493, 頁碼.1090-1097
2019
Web of Science ID: WOS:000502007800145

摘要

Adsorption Chloroaluminum phthalocyanine Irradiation effect Photoelectron spectroscopy Stability Adsorption Aluminum alloys Convergence of numerical methods Density functional theory Irradiation Lattice theory Molecules Organometallics Photoelectron spectroscopy Photoelectrons Photons Silver Chloroaluminum phthalocyanine Flipping mechanisms Irradiation effect Lattice-mismatched Molecular energy state Polar organic molecules Thin film surfaces Ultraviolet irradiations Thin films
The behavior of polar metal organic molecules, chloroaluminum phthalocyanine (ClAlPc), upon ultraviolet (UV) irradiation was investigated to evaluate the stability of the adsorption process on the Ag(111) thin film and bulk crystal. Photoelectron spectroscopy (PES) was mainly employed to measure the molecular energy states (MES) and vacuum level (VL) shift for 1-ML ClAlPc in the Cl-down configuration. A consistent trend was observed showing that ClAlPc in the Cl-down configuration is energetically more stable on the Ag thin-film surface than on the corresponding surface of the Ag bulk crystal. The intermediate adsorption state in tilted configuration during the irradiation impinging is identified by large positive VL shifts and broad spectra line shapes to infer a flipping mechanism from Cl-down to Cl-up configuration. Strain on the Ag thin films from the underlying lattice-mismatched Ge(111) substrate is considered to cause enlarged hollow sites on the Ag(111) thin-films, that anchor the Cl-down configuration more tightly on the thin-film surfaces, as confirmed by density functional theory (DFT) calculations. © 2019 Elsevier B.V.

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