- By:
- Wang, Caiqi ; He, Yang; Hong, Jiyun; E perez aguilar, Jorge; Foucher, Alexandre Cyrus Serge ; Liu, Chang ; Gan, Zhuoran ; Bare, Simon; Chi, Miaofang ; Li, Yuanyuan ; Wu, Zili
- Journal Name:
- ACS Catalysis
- Page Number:
- 15931-15942
- Volume:
- 16
- Issue Number:
- 16
- Publication Date:
- September 8, 2026
- View DOI Listing:
- https://doi.org/10.1021/acscatal.6c03484
Abstract
Intermetallic compounds (IMCs) are attractive platforms for elucidating structure−catalysis relationships due to their ordered atomic structure and well-defined bulk composition. Yet, how their surfaces reconstruct under reaction conditions and how such reconstruction is governed by bulk stoichiometry remain poorly understood. Here, we show that SiO2-supported Ni−In IMCs undergo reaction-driven surface reconstruction during CO2 hydrogenation and that bulk stoichiometry can be used to steer this evolution toward methanol formation. Among the compositions examined (Ni2In1, Ni1In1, Ni2In3, and Ni1In2), Ni2In3/SiO2 exhibits the highest methanol selectivity (∼70%) and a methanol space-time yield of 652 mg·gmetal−1·h−1 at 250 °C and 30 bar. Combined structural, surface characterization, and kinetic analyses suggest that the intermetallic bulk remains largely preserved, whereas the surface departs from the stoichiometric bulk and evolves toward InOx-enriched surface domains coupled to an electron-rich Ni−In intermetallic phase. The extent of this evolution depends strongly on the bulk Ni:In stoichiometry and is most pronounced for Ni2In3/SiO2. These findings identify bulk stoichiometry as a handle for tuning the working-state surface of intermetallic catalysts and provide a basis for designing methanol synthesis catalysts through controlled surface reconstruction.