Electrifying HCOOH synthesis from CO 2 building blocks over Cu–Bi nanorod arrays

Author:

Zhang Guiru1ORCID,Tan Bing2,Mok Dong Hyeon3,Liu Huiya2,Ni Baoxin1,Zhao Gui45,Ye Ke1,Huo Shengjuan6,Miao Xiaohe7,Liang Zheng8ORCID,Liu Xi459ORCID,Chen Liwei45ORCID,Zhang Zemin2ORCID,Cai Wen-Bin10ORCID,Back Seoin3,Jiang Kun110ORCID

Affiliation:

1. Interdisciplinary Research Center, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China

2. School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China

3. Department of Chemical and Biomolecular Engineering, Institute of Emergent Materials, Sogang University, Seoul 04107, Republic of Korea

4. In-situ Center for Physical Sciences and Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China

5. Future Battery Research Center, Global Institute for Future Technology, Shanghai Jiao Tong University, Shanghai 200240, China

6. Department of Chemistry, College of Sciences, Shanghai University, Shanghai 200444, China

7. Instrumentation and Service Center for Physical Sciences, Westlake University, Zhejiang, Hangzhou 310024, China

8. Laboratory of Energy Chemical Engineering, Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China

9. School of Chemistry and Chemical Engineering, Ningxia University, Yinchuan 750021, China

10. Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Collaborative Innovation Center of Chemistry for Energy Materials, Department of Chemistry, Fudan University, Shanghai 200433, China

Abstract

Precise electrochemical synthesis of commodity chemicals and fuels from CO 2 building blocks provides a promising route to close the anthropogenic carbon cycle, in which renewable but intermittent electricity could be stored within the greenhouse gas molecules. Here, we report state-of-the-art CO 2 -to-HCOOH valorization performance over a multiscale optimized Cu–Bi cathodic architecture, delivering a formate Faradaic efficiency exceeding 95% within an aqueous electrolyzer, a C-basis HCOOH purity above 99.8% within a solid-state electrolyzer operated at 100 mA cm −2 for 200 h and an energy efficiency of 39.2%, as well as a tunable aqueous HCOOH concentration ranging from 2.7 to 92.1 wt%. Via a combined two-dimensional reaction phase diagram and finite element analysis, we highlight the role of local geometries of Cu and Bi in branching the adsorption strength for key intermediates like *COOH and *OCHO for CO 2 reduction, while the crystal orbital Hamiltonian population analysis rationalizes the vital contribution from moderate binding strength of η 2 (O,O)-OCHO on Cu-doped Bi surface in promoting HCOOH electrosynthesis. The findings of this study not only shed light on the tuning knobs for precise CO 2 valorization, but also provide a different research paradigm for advancing the activity and selectivity optimization in a broad range of electrosynthetic systems.

Funder

MOST | National Natural Science Foundation of China

National Research Foundation of Korea

Publisher

Proceedings of the National Academy of Sciences

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