Reduction‐driven fermi‐level equilibration for electron modulation of Rh/ ZnO ultrasmall nanoislands

Abstract Precise electronic control of metal sites is key to overcoming competitive adsorption in hydroformylation. Herein, we establish a dynamic electronic metal–support interaction in Rh–ZnO/SiO 2 catalyst, where atomically dispersed Rh on reducible ~2 nm ZnO nanoislands enables continuous electronic tuning of Rh. Unlike bulk ZnO, the lattice oxygen in these ultrasmall ZnO islands is more readily removed by H 2 , generating oxygen‐deficient ZnO islands. Notably, the Fermi level reshift is strongly correlated with the oxygen defect concentration as the reduction temperature increases from 100°C to 600°C, continuously driving electron transfer between Rh and ZnO. In styrene hydroformylation, this correlation translates into a volcano‐shaped activity dependence on the reduction temperature of Rh–ZnO/SiO 2 pretreatment. The optimal catalyst (RhZn‐400) outperforms its counterparts by factors of 3.5 and 1.5. Operando DRIFTS and DFT simulations identify the activity apex as a Sabatier optimum, where moderate electron enrichment achieves balanced adsorption of competing intermediates.

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Publication Details

Journal
AIChE Journal
Published
2026-09-17
DOI
https://doi.org/10.1002/aic.70660
Primary Topic
Catalysis for Biomass Conversion
Type
article
Field-Weighted Citation Impact
0.00

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article

Reduction‐driven fermi‐level equilibration for electron modulation of Rh/ ZnO ultrasmall nanoislands

Meiyu Shi, Ruotong Zhang, Panpan Wang, Pengfei Zhang et al.
AIChE Journal
Catalysis for Biomass Conversion
article

Reduction‐driven fermi‐level equilibration for electron modulation of Rh/ ZnO ultrasmall nanoislands

Meiyu Shi, Ruotong Zhang, Panpan Wang, Pengfei Zhang, Shu Yuan, Xicai Tian
article en

Abstract

Abstract Precise electronic control of metal sites is key to overcoming competitive adsorption in hydroformylation. Herein, we establish a dynamic electronic metal–support interaction in Rh–ZnO/SiO 2 catalyst, where atomically dispersed Rh on reducible ~2 nm ZnO nanoislands enables continuous electronic tuning of Rh. Unlike bulk ZnO, the lattice oxygen in these ultrasmall ZnO islands is more readily removed by H 2 , generating oxygen‐deficient ZnO islands. Notably, the Fermi level reshift is strongly correlated with the oxygen defect concentration as the reduction temperature increases from 100°C to 600°C, continuously driving electron transfer between Rh and ZnO. In styrene hydroformylation, this correlation translates into a volcano‐shaped activity dependence on the reduction temperature of Rh–ZnO/SiO 2 pretreatment. The optimal catalyst (RhZn‐400) outperforms its counterparts by factors of 3.5 and 1.5. Operando DRIFTS and DFT simulations identify the activity apex as a Sabatier optimum, where moderate electron enrichment achieves balanced adsorption of competing intermediates.

AIChE Journal
Shanghai Jiao Tong University (CN), Ningxia University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Ningxia Province
Life below water
Openalex Percentile: Top 21%
Catalysis for Biomass Conversion
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Reduction‐driven fermi‐level equilibration for electron modulation of Rh/ ZnO ultrasmall nanoislands — Meiyu Shi, Ruotong Zhang, et al. · AIChE Journal (2026) | TGRS Research Map | TGRS