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High-efficiency C electrosynthesis on a lattice-strain-stabilized nitrogen-doped Cu surface

Nature Communications, ISSN: 2041-1723, Vol: 15, Issue: 1, Page: 7070
2024
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Article Description

The synthesis of multi-carbon (C) fuels via electrocatalytic reduction of CO, HO using renewable electricity, represents a significant stride in sustainable energy storage and carbon recycling. The foremost challenge in this field is the production of extended-chain carbon compounds (C, n ≥ 3), wherein elevated CO coverage (θ) and its subsequent multiple-step coupling are both critical. Notwithstanding, there exists a “seesaw” dynamic between intensifying CO adsorption to augment θ and surmounting the C-C coupling barrier, which have not been simultaneously realized within a singular catalyst yet. Here, we introduce a facilely synthesized lattice-strain-stabilized nitrogen-doped Cu (LSN-Cu) with abundant defect sites and robust nitrogen integration. The low-coordination sites enhance θ and concurrently, the compressive strain substantially fortifies nitrogen dopants on the catalyst surface, promoting C-C coupling activity. The n-propanol formation on the LSN-Cu electrode exhibits a 54% faradaic efficiency and a 29% half-cell energy efficiency. Moreover, within a membrane electrode assembly setup, a stable n-propanol electrosynthesis over 180 h at a total current density of 300 mA cm is obtained.

Bibliographic Details

Niu, Wenzhe; Feng, Jie; Chen, Junfeng; Deng, Lei; Guo, Wen; Li, Huajing; Zhang, Liqiang; Li, Youyong; Zhang, Bo

Springer Science and Business Media LLC

Chemistry; Biochemistry, Genetics and Molecular Biology; Physics and Astronomy

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