Toshiharu Teranishi, Wataru Suzuki
ChemPlusChem 2025年5月19日 査読有り招待有り筆頭著者責任著者
Gold (Au) exhibits distinct reactivities with O2 at the nanometer to atomic scales, whereas bulk Au is chemically inert. Since the discovery of catalytic reactivities in Au‐based materials, including nanoparticles, molecular complexes, and nanoclusters (AuNCs), mechanistic insights into the interaction and reductive activation of O2 by Au have been pursued by researchers. However, the atomic level understanding of the reaction mechanism remains elusive compared with that for other widely explored transition metalO2 systems. This paper briefly discusses recent progress in clarifying the reaction mechanisms of Au‐O2 chemistry for homogeneous molecular Au complexes and atomically precise AuNCs. We introduce our research on (1) O2‐activation by Au complexes without the distinct formation of conventional metal‐hydride species, and (2) the application of kinetic analyses to the reaction of thiolate‐protected AuNCs with O2 to quantify parameters like O2‐binding constants on the Au surface. These findings help elucidate both the Au‐O2 interaction and reductive activation of O2, which are essential in catalytic systems using O2 as a terminal oxidant that can contribute to the developments of eco‐friendly oxidation Au‐based catalysts with high performance.