Characterizing Molecule-Metal Surface Chemistry with Ab Initio Simulation of X-ray Absorption and Photoemission Spectra.
Samuel J HallBenedikt P KleinReinhard J MaurerPublished in: The journal of physical chemistry. C, Nanomaterials and interfaces (2023)
X-ray photoemission and X-ray absorption spectroscopy are important techniques to characterize chemical bonding at surfaces and are often used to identify the strength and nature of adsorbate-substrate interactions. In this study, we judge the ability of X-ray spectroscopic techniques to identify different regimes of chemical bonding at metal-organic interfaces. To achieve this, we sample different interaction strength regimes in a comprehensive and systematic way by comparing two topological isomers, azulene and naphthalene, adsorbed on three metal substrates with varying reactivity, namely the (111) facets of Ag, Cu, and Pt. Using density functional theory, we simulate core-level binding energies and X-ray absorption spectra of the molecular carbon species. The simulated spectra reveal three distinct characteristics based on the molecule-specific spectral features which we attribute to types of surface chemical bonding with varying strength. We find that weak physisorption only leads to minor changes compared to the gas-phase spectra, weak chemisorption leads to charge transfer and significant spectral changes, and strong chemisorption leads to a loss of the molecule-specific features in the spectra. The classification we provide is aimed at assisting interpretation of experimental X-ray spectra for complex metal-organic interfaces.
Keyphrases
- density functional theory
- dual energy
- high resolution
- molecular dynamics
- computed tomography
- electron microscopy
- optical coherence tomography
- magnetic resonance imaging
- mass spectrometry
- staphylococcus aureus
- deep learning
- gene expression
- magnetic resonance
- dna methylation
- quantum dots
- biofilm formation
- highly efficient
- drug discovery
- monte carlo