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A combined first principles based and experimental X ray photoelectron spectroscopy approach was used to investigate the thermal decomposition of two model biofuel compounds, phenol and hydroquinone, on Pt 111 at both low and high coverages. The DFT based approach yields adsorption geometries and energies, activation barriers and core level binding energy shifts for C 1s and O 1s. Increasing the coverage in the theoretical model leads to slight shifts in core level binding energies amp; 9472;toward higher values for C 1s and lower values for O 1s. It also alters the energy profiles of the decomposition reaction pathway, resulting in weaker adsorption energies and changes in both reaction and activation barriers. At low temperatures, we observe a multilayer for phenol and hydroquinone upon adsorption, with desorption occurring at 200 and 270 K, respectively. Following desorption of the multilayer, decomposition proceeds via initial O H bond scission, followed by two parallel pathways involving either C H or C C bond scission, whereby in the case of phenol C H bond scission occurs first. We further provide characteristic core level binding energies by theoretical calculations that are subsequently used in experimental analyses, establishing a reference database for key spectra of phenolic functionalities applicable to a range of catalytic reactions
Hensley et al. (Mon,) studied this question.