Dynamic carbon overlayered CuCo alloy promotes syngas to higher alcohols

Abstract Syngas (CO/H 2 ), sourced from coal, biomass, and shale gas, plays a crucial role in producing a wide range of industrially essential hydrocarbons and oxygenates through Fischer–Tropsch synthesis and its variations. Despite extensive research dating back nearly a century, transforming syngas into higher alcohols remains challenging due to issues with low selectivity and catalyst instability. Generally, more than 50% of CO in typical syngas conversions yields unwanted hydrocarbons, mainly alkanes. Herein, we develop a catalyst integrating a Mo 2 C-matrix-supported CuCo alloy with hydrophobic graphitic carbon overlayers, achieving 80% selectivity toward value-added alcohols and olefins, of which 59% are higher alcohols, while limiting alkanes to around 10%. The overlayers dynamically participate in the reaction through carbon consumption and replenishment, generating carbon-overlayer-derived CH x species that form an asymmetrically polarised coupling pair with CO-derived intermediates, thereby lowering the barrier for CO insertion and diverting CO from deoxygenation pathways leading to alkane and coke formation. Consequently, the yield of value-added products reaches four times that of typical benchmarks at 80% CO conversion with long-term stability. This work represents a substantial advance in higher alcohol synthesis and sheds new light on the catalytic role of surface carbon in syngas conversion.

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Publication Details

Journal
Nature Communications
Published
2026-09-30
DOI
https://doi.org/10.1038/s41467-026-78203-7
Primary Topic
Catalysts for Methane Reforming
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article
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article

Dynamic carbon overlayered CuCo alloy promotes syngas to higher alcohols

Xuelian Liang, Xinping Duan, Linmin Ye, Yufei Zhao et al.
Nature Communications
Catalysts for Methane Reforming
article

Dynamic carbon overlayered CuCo alloy promotes syngas to higher alcohols

Xuelian Liang, Xinping Duan, Linmin Ye, Yufei Zhao, Si‐Wei Ying, Jianwei Zheng, Youzhu Yuan, Su‐Yuan Xie, Mingshu Chen, Qiuyue Zhang, Jiachang Zuo, Shan Gao, Jia Liu, Jing Ren
article en

Abstract

Abstract Syngas (CO/H 2 ), sourced from coal, biomass, and shale gas, plays a crucial role in producing a wide range of industrially essential hydrocarbons and oxygenates through Fischer–Tropsch synthesis and its variations. Despite extensive research dating back nearly a century, transforming syngas into higher alcohols remains challenging due to issues with low selectivity and catalyst instability. Generally, more than 50% of CO in typical syngas conversions yields unwanted hydrocarbons, mainly alkanes. Herein, we develop a catalyst integrating a Mo 2 C-matrix-supported CuCo alloy with hydrophobic graphitic carbon overlayers, achieving 80% selectivity toward value-added alcohols and olefins, of which 59% are higher alcohols, while limiting alkanes to around 10%. The overlayers dynamically participate in the reaction through carbon consumption and replenishment, generating carbon-overlayer-derived CH x species that form an asymmetrically polarised coupling pair with CO-derived intermediates, thereby lowering the barrier for CO insertion and diverting CO from deoxygenation pathways leading to alkane and coke formation. Consequently, the yield of value-added products reaches four times that of typical benchmarks at 80% CO conversion with long-term stability. This work represents a substantial advance in higher alcohol synthesis and sheds new light on the catalytic role of surface carbon in syngas conversion.

Nature Communications
Xiamen University (CN), State Key Laboratory of Chemical Resource Engineering (CN), Beijing University of Chemical Technology (CN)
Openalex Percentile: Top 33%
Catalysts for Methane Reforming
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