Xue‐Qiang Zhang, Xue‐Qiang Zhang, Florian Kraushofer, Qi Yuan, Yuxuan Wang, Matthias Krinninger, Zikang Su, Haozhe Gai, Kenneth Goodman, Xianze Zhang, Xianze Zhang, Yu Wang, Tong Xiao, Tao Cheng, Jianfeng Wu, Barbara A. J. Lechner, Monika Blum
• Chemical and structural dynamics at the In 2 O 3 /Pd(1 1 1) interface and their consequences for CO 2 hydrogenation. • Unconventional reaction pathway for efficient CO 2 -to-methanol catalysts at temperatures below 473 K. • In situ spectroscopy and microscopy reveals dynamic Pd–In 2 O 3 interfacial activities. • InPd y O x phase significantly governs the catalytic selectivity. • Partial reduction of In 2 O 3 at room temperature due to direct contact with Pd(1 1 1) An unconventional reaction mechanism in an In 2 O 3 /Pd(1 1 1) inverse model catalyst for the CO 2 hydrogenation reaction has been uncovered: In 2 O 3 is partially reduced at room temperature in a reaction atmosphere as a result of its direct contact with Pd(1 1 1), which is an efficient H 2 splitter. The reduction induces changes in surface free energy, leading to a dynamical restructuring at the In 2 O 3 /Pd(1 1 1) interface via formation of InO x and outward diffusion of Pd, as revealed by ambient pressure X-ray photoelectron spectroscopy, X-ray absorption spectroscopy and density functional theory simulations. This dynamical restructuring eventually promotes the growth of 2D InPd y O x nanodomains as the catalytically active phase and the exclusive formation of methanol upon hydrogenation of CO 2 at room temperature. A comparable high selectivity toward CH 3 OH was found in more realistic bulk catalytic systems (2 wt % Pd/In 2 O 3 catalyst and commercial CZA catalyst). Scanning tunneling microscopy under ultrahigh vacuum and ambient pressure reaction atmospheres further reveals the structural dynamics at the InO x /Pd(1 1 1) interface, where we follow in situ the evolution of the InO x particles on Pd(1 1 1) and the mobility of the InPd y O x nanodomains in a CO 2 + H 2 environment. The present findings of the formation of a mixed oxide phase in a dynamically restructuring metal/reducible-oxide interface indicate further implications for other heterogeneous catalytic systems beyond the present CO 2 hydrogenation example and highlight the importance of in situ investigations.