A paper co-authored by Professor Toru Murayama of Hokkaido University’s Institute for Catalysis has been published in Chemistry – A European Journal.
- Nayu Hamada, Akihiro Nakayama, Riku Suzuki, Kosei Arata, Norihito Sakaguchi, Hiroya Ishikawa, Toru Murayama, Tetsuya Shimada, Shinsuke Takagi, Tamao Ishida. Anchoring Monolayer TiOₓ Nanosheets on Gold Nanoparticles Enhances Catalytic Activity for CO Oxidation Depending on the Type of Support. Chemistry – A European Journal, 2026, Vol. 32, Issue 32, e71123.
DOI: https://doi.org/10.1002/chem.71123
Abstract
Catalytic performance of supported gold catalysts is governed by the contact structure between Au nanoparticles (NPs) and reducible metal oxides. In this study, we constructed an Au–TiOx interface by decorating supported Au NPs with monolayer titania nanosheets (TNS). We report a support-dependent formation of the interface between Au and TiOx thin overlayer. For Au/SiO2, TNS adsorption followed by calcination significantly enhanced CO oxidation activity. In contrast, for Au/CeO2, TNS adsorption without calcination markedly improved the activity. Spectroscopic analyses revealed that cationic Au and Ti3+ species increased after TNS adsorption for Au/CeO2 and the subsequent calcination for Au/SiO2, respectively, suggesting the formation of Au–TiOx interface. X-ray photoelectron spectroscopy (XPS) showed that TNS adsorption on CeO2 induced a slight increase in Ce3+ species, consistent with Ce–O–Ti anchoring via interaction between surface Ti–OH and Lewis acidic Ce4+ sites. The surface reaction between TNS and redox-active CeO2 gives Au–TiOx contact structures, whereas nonreducible SiO2 requires calcination. Moreover, the TiOx overlayer derived from TNS was more oxygen-deficient than that obtained by impregnation of Ti species. This work demonstrates that the use of monolayer TNS is advantageous for the formation of active Au–TiOx interface and rich oxygen vacancies.
Graphical Abstract
Monolayer TNS cover Au/SiO2 and Au/CeO2 surfaces, forming Au–TiOx contact structure that serve as active sites for CO oxidation, thereby significantly improving catalytic activity. On Au/SiO2, the Au–TiOx interface was generated through TNS adsorption and calcination, while TNS adsorption solely promoted the Au–TiOx interface formation on Au/CeO2. TNS provides abundant oxygen vacancies, promoting O2 activation.

Credit: Hamada et al., Chemistry – A European Journal, 32(32), e71123 (2026), https://doi.org/10.1002/chem.71123. © 2026 The Author(s). Licensed under CC BY-NC-ND 4.0.