Oxide-Derived Copper Nanowire Bundles for Efficient CO2 Reduction to Multi-Carbon Products

Author:

Xu Dong1,Wu Minfang2,Huang Yan3,Gu Yongzheng4,Wang Guiwen3,Yang Long3,Liu Yongping3,Gao Tengfei1,Li Shoujie5,Wei Wei5,Chen Wei5ORCID,Dong Xiao5ORCID

Affiliation:

1. CHN Energy New Energy Technology Research Institute Co., Ltd., Beijing 102209, China

2. Center for Chemistry of High-Performance & Novel Materials, Institute of Analytical Chemistry, Department of Chemistry, Zhejiang University, Hangzhou 310058, China

3. CHN Energy Jinjie Energy Co., Ltd., Yulin 719319, China

4. GD Power Development Co., Ltd., Beijing 100101, China

5. CAS Key Laboratory of Low-Carbon Conversion Science and Engineering, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, China

Abstract

Cu-based catalysts for efficient C2+ production from CO2 electrocatalytic reduction reaction (CO2ERR) exhibit significant promise, but still suffer from ambiguous mechanisms due to the intrinsic structure instability during electroreduction. Herein, we report an oxide-derived copper nanowire bundle (OD-Cu NWB) for efficient CO2ERR to C2+ products. OD-Cu NWBs with a well-preserved nanowire bundle morphology lead to promoted multi-carbon production compared to commercial copper powders. The formation of OD-Cu NWBs shows a great dependence on the precipitation/calcination temperatures and per-reduction potentials, which further influence the ultimate CO2ERR performance correspondingly. The optimized preparation parameters for the formation of a well-ordered nanowire bundle morphology are found, leading to a preferred C2+ production ability. Besides the nanowire bundle morphology, the oxide-derived Cu essence of OD-Cu NWBs with stabilized Cu+ species from per-reduction also promotes the CO2ERR activity and facilitates the C-C coupling of key intermediates for C2+ production. This work provides a facile strategy and inspiration for CO2ERR catalyst developments targeting high-valued multi-carbon products.

Funder

CHN Energy Investment Group Co., Ltd.

Shanghai Excellent Principal Investigator

the Foundation of Key Laboratory of Low-Carbon Conversion Science & Engineering, Shanghai Advanced Research Institute, Chinese Academy of Sciences

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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