Azimet A Karluk, Javeed Mahmood, Seok-Jin Kim, Cafer T Yavuz
Metallic Ni nanoparticles doped with Mo are recently developed highly active nanocatalysts for dry reforming of methane (DRM). However, the nature of interactions and co-existence of Ni and Mo, optimal Ni/Mo ratios, as well as the impact of synthetic methods on catalyst structure and activity, remain unclear. This study compares two different synthetic approaches, one-pot synthesis (OP) and post-modification (PM), to determine the optimal Ni/Mo ratio for catalytic performance. The OP method promotes the formation of NiMo nanoparticles under adequate reducing conditions, significantly enhancing DRM activity. In contrast, the PM method ensures precise Ni/Mo ratios but leads to the formation of large MoO3 nanocrystals that obstruct active sites, thus reducing the catalytic performance. Our findings demonstrate that the highest DRM activity is achieved with a 10:1 molar ratio of Ni/Mo to predominantly form alloy nanoparticles and emphasize that the synthesis method, along with the stoichiometric ratios, plays a crucial role in achieving exceptional catalytic performance.