Abstract Water plays important roles in many energy chemistry and catalysis processes and yet atomic-scale understanding of water-solid interaction in the water-involved interfacial processes still remains further explored. Here, combining high-pressure scanning tunneling microscopy and theoretical calculation we have visualized and elucidated both oxidation of CoO bilayers and reduction of CoO2 trilayers in water atmospheres. CoO bilayers are readily hydroxylated to Co(OH)2 with slight Co oxidation even at 10−8 mbar H2O. At CoO2−x surface containing both CoO and CoO2 domains, hydroxylation of CoO produces a metastable Co(OH)2-CoO2−x interface, where H2O assists oxygen desorption from interfacial CoO2 and further hydroxylation of newly formed CoO. The dynamic Co(OH)2-CoO2−x reaction front drives unusual reductive hydroxylation of CoO2−x into Co(OH)2 under mbar H2O. Both CoO2 reduction through H2O-assisted oxygen desorption and CoO oxidation via H2O dissociative adsorption reveal a dynamic redox mechanism for water-oxide interactions.
Sun et al. (Fri,) studied this question.