Harnessing Schottky Barrier in ZnO‐AuCu to Enhance Charge Separation for Selective CO 2 Methanation

ABSTRACT The photocatalytic conversion of CO 2 into valuable solar fuels presents a promising strategy for addressing both greenhouse gas emissions and energy sustainability. In this study, uniform and highly dispersed AuCu alloy nanoparticles were deposited on ZnO nanoparticles through an in situ photoreduction method for photocatalytic CO 2 reduction to CH 4 . The optimized ZnO‐AuCu catalyst achieved a CH 4 yield of 45.2 µmol g −1 h −1 (12.22 times higher than that of pure ZnO), with a remarkable selectivity of 98.7%. The enhanced activity originates from the synergistic effects of AuCu alloying and the ZnO/AuCu heterointerface. Specifically, the AuCu alloy extends visible light harvesting through surface plasmon resonance, while the intimate ZnO‐AuCu contact forms a Schottky junction that drives photogenerated electron separation and enriches electrons at Cu sites. CO 2 ‐TPD and DFT adsorption calculations indicate that the ZnO/AuCu interface favors CO 2 capture and activation, whereas the AuCu surface facilitates subsequent hydrogenation steps. In situ DRIFTS further reveals the accumulation of key CH x * intermediates, and Gibbs free energy calculations confirm that AuCu alloying lowers the energetic barriers for CO 2 activation and deep hydrogenation. This work provides insight into regulating interfacial charge transfer and surface reaction pathways through alloy engineering for efficient and selective CO 2 methanation.

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Small
Published
2026-09-09
DOI
https://doi.org/10.1002/smll.75560
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
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Harnessing Schottky Barrier in ZnO‐AuCu to Enhance Charge Separation for Selective CO 2 Methanation

Xuelian Yu, Guocheng Lv, Xin Liu, Qingxin Liu et al.
Small
CO2 Reduction Techniques and Catalysts
article

Harnessing Schottky Barrier in ZnO‐AuCu to Enhance Charge Separation for Selective CO 2 Methanation

Xuelian Yu, Guocheng Lv, Xin Liu, Qingxin Liu, Yingmo Hu, Renee Huang, Meng Liu, Yaojuan Dong, Jiaqi Liu
article en

Abstract

ABSTRACT The photocatalytic conversion of CO 2 into valuable solar fuels presents a promising strategy for addressing both greenhouse gas emissions and energy sustainability. In this study, uniform and highly dispersed AuCu alloy nanoparticles were deposited on ZnO nanoparticles through an in situ photoreduction method for photocatalytic CO 2 reduction to CH 4 . The optimized ZnO‐AuCu catalyst achieved a CH 4 yield of 45.2 µmol g −1 h −1 (12.22 times higher than that of pure ZnO), with a remarkable selectivity of 98.7%. The enhanced activity originates from the synergistic effects of AuCu alloying and the ZnO/AuCu heterointerface. Specifically, the AuCu alloy extends visible light harvesting through surface plasmon resonance, while the intimate ZnO‐AuCu contact forms a Schottky junction that drives photogenerated electron separation and enriches electrons at Cu sites. CO 2 ‐TPD and DFT adsorption calculations indicate that the ZnO/AuCu interface favors CO 2 capture and activation, whereas the AuCu surface facilitates subsequent hydrogenation steps. In situ DRIFTS further reveals the accumulation of key CH x * intermediates, and Gibbs free energy calculations confirm that AuCu alloying lowers the energetic barriers for CO 2 activation and deep hydrogenation. This work provides insight into regulating interfacial charge transfer and surface reaction pathways through alloy engineering for efficient and selective CO 2 methanation.

Small
China University of Geosciences (Beijing) (CN)
Responsible consumption and production
Openalex Percentile: Top 28%
CO2 Reduction Techniques and Catalysts
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Harnessing Schottky Barrier in ZnO‐AuCu to Enhance Charge Separation for Selective CO 2 Methanation — Xuelian Yu, Guocheng Lv, et al. · Small (2026) | TGRS Research Map | TGRS