Promoted CO <sub>2</sub> Electrolysis to Formic Acid Using Single Atom Cobalt Alloyed Tin

J Jing Xue (State Key Laboratory of Catalysis Dalian Institute of Chemical Physics) B Bifa Ji K Kexin Zhong Y Yizhen Chen (Key Laboratory of Bioinorganic and Synthetic Chemistry of Ministry of Education, Guangdong Basic Research Center of Excellence for Functional Molecular Engineering, School of Chemistry, IGCME) X Xu Li J Jiawei Li C Chunxiao Liu (Department of Physics, University of California) Q Qunxiang Li (Hefei National Research Center for Physical Sciences at the Microscale and Synergetic Innovation Center of Quantum Information & Quantum Physics, New Cornerstone Science Laboratory) J Jie Zeng (School of Chemistry & Chemical Engineering) T Tingting Zheng Y Yongping Zheng C Chuan Xia (School of Materials and Energy)

Abstract

ABSTRACT Electrochemical CO 2 reduction with renewable electricity offers a promising path for accessing carbon‐neutral liquid chemicals. Although post‐transition metals, especially tin (Sn), are intrinsically selective for formate, most catalysts still require high overpotentials to reach industrially relevant current densities and lose activity under sustained operation. Here, we report a single‐atom alloy catalyst, comprising isolated cobalt (Co) atoms in a Sn matrix (Co 1 Sn), that drives CO 2 ‐to‐formate with near‐unity selectivity at high rates. Co 1 Sn achieves an FE formate of up to 99% at current densities exceeding −1 A cm −2 . At current densities ranging from −100 to −1000 mA cm −2 , Co 1 Sn maintained &gt;92% formate selectivity. When integrated in a porous solid electrolyte reactor, a continuous production of pure formic acid was enabled for 130 h at a current density of −50 mA cm −2 with an FE HCOOH of ∼95%. In situ spectroscopy and theoretical simulation demonstrated that the incorporation of single Co atoms finely tuned the electronic structure of the Sn matrix, enhanced CO 2 activation, and lowered barriers along the O‐bound *OCHO pathway, thereby facilitating formate generation. This work resolves the rate‐selectivity‐durability trade‐off in formic acid electrosynthesis by leveraging a single‐atom alloying strategy.

Article Details

Volume / Issue Vol. 38, Issue 19
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

J

Jing Xue

State Key Laboratory of Catalysis Dalian Institute of Chemical Physics

B

Bifa Ji

K

Kexin Zhong

Y

Yizhen Chen

Key Laboratory of Bioinorganic and Synthetic Chemistry of Ministry of Education, Guangdong Basic Research Center of Excellence for Functional Molecular Engineering, School of Chemistry, IGCME

X

Xu Li

J

Jiawei Li

C

Chunxiao Liu

Department of Physics, University of California

Q

Qunxiang Li

Hefei National Research Center for Physical Sciences at the Microscale and Synergetic Innovation Center of Quantum Information & Quantum Physics, New Cornerstone Science Laboratory

J

Jie Zeng

School of Chemistry & Chemical Engineering

T

Tingting Zheng

Y

Yongping Zheng

C

Chuan Xia

School of Materials and Energy