Ethanol steam reforming (ESR) enables renewable biomass-derived H2 production but suffers from selectivity and deactivation challenges. While CeO2-supported metal catalysts are widely explored for ESR owing to strong metal–support interactions and inherent oxygen storage capacity, persistent ambiguities in facet-dependent performance arise from methodological constraints in decoupling intrinsic facet effects from metal particle size variations. By synthesizing morphology-controlled CeO2 supports exposing distinct facets (100, 110, 111) and anchoring size-uniform Ni nanoparticles (∼2 nm), we decoupled facet contributions to reveal how facet-specific Lewis acidity governs OH* reactivity at Ni–CeO2 interfaces. Combined kinetic assessments, in situ spectroscopy, and density functional theory identify α-C–H abstraction from CH3CH2O* by interfacial OH* as the kinetically relevant step, with acetate intermediates directly formed from CH3CH2O* (not acetaldehyde) facilitating C–C bond scission under steam-rich conditions. Ni supported on 100-rich CeO2 nanocubes enhances OH* reactivity via weakened Lewis acidity, lowering acetate formation barriers. This facet-modulated interfacial chemistry achieves 426 mmol gcat–1 h–1 H2 formation rate and 72. 1% CO2 selectivity at 400 °C, surpassing literature benchmarks under comparable conditions. These findings elucidate how facet-dependent interfacial chemistry dictates ESR performance on Ni/CeO2 catalysts, providing mechanistic insights beyond conventional oxygen storage capacity correlations.
Liao et al. (2026) studied this question.