Electrochemically mediated disproportionation for selective formaldehyde upcycling in acid

Y Yun Song Z Zhaohua Zhu T Tridip Das A Aarya D. Riasati J Jianjun Su (Department of Chemistry and State Key Laboratory of Marine Environmental Health) W Weihua Guo Y Yong Liu G Geng Li (Department of Chemistry, State Key Laboratory of Marine Pollution, City University of Hong Kong, Hong Kong 999077, P. R. China) Y Yinger Xin (Department of Chemistry and State Key Laboratory of Marine Environmental Health) Q Qiang Zhang M Mingming He R Ruixuan Wang R Rui Xue S Shenlong Zhao (National Center for Nanoscience and Technology, No. 11 ZhongGuanCun BeiYiTiao, Beijing 100190, China) C Chuan Xia (School of Materials and Energy) B Ben Zhong Tang (School of Science and Engineering, Guangdong Basic Research Center of Excellence for Aggregate Science, The Chinese University of Hong Kong (Shenzhen), Longgang, Shenzhen 518172, Guangdong, P. R. China) M Marc Robert (Sorbonne Université) X Xin Wang W William A. Goddard R Ruquan Ye (Department of Chemistry and State Key Laboratory of Marine Environmental Health)

Abstract

Abstract Formaldehyde (FA) electrolysis is attractive for paired production of value‑added chemicals. However, conventional electrolysis adopts alkaline electrolytes, which triggers FA self-disproportionation and severe feed loss. Here we introduce a sustainable and selective strategy for valorizing FA through electrochemically mediated disproportionation in acidic electrolytes. By leveraging a dual-electrode system consisting of a hydrophobic copper tetraminophthalocyanine layer (CuTAPc-layer) cathode and a Pt 2 Ru bimetallic anode, we efficiently convert FA into methanol and formic acid at high Faradaic efficiencies of 93.2% and 91.3%, respectively. Compared with alkaline FA oxidation, which can lose up to 76% FA and complicate downstream separation, the acidic system suppresses side reactions to ensure high product purity. Mechanism studies reveal that the hydrophobic microenvironment of CuTAPc-layer suppresses hydrogen evolution, while the stronger oxophilicity of Pt 2 Ru enhances FA activation and lowers the key deprotonation barrier for FA oxidation. The integrated device demonstrates application potential in polyoxymethylene upgrading, delivering 374.2 mA at 4 V with ~90% single-pass conversion, establishing a scalable and eco-friendly electrochemical pathway for chemical upcycling.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 18, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

Y

Yun Song

Z

Zhaohua Zhu

T

Tridip Das

A

Aarya D. Riasati

J

Jianjun Su

Department of Chemistry and State Key Laboratory of Marine Environmental Health

W

Weihua Guo

Y

Yong Liu

G

Geng Li

Department of Chemistry, State Key Laboratory of Marine Pollution, City University of Hong Kong, Hong Kong 999077, P. R. China

Y

Yinger Xin

Department of Chemistry and State Key Laboratory of Marine Environmental Health

Q

Qiang Zhang

M

Mingming He

R

Ruixuan Wang

R

Rui Xue

S

Shenlong Zhao

National Center for Nanoscience and Technology, No. 11 ZhongGuanCun BeiYiTiao, Beijing 100190, China

C

Chuan Xia

School of Materials and Energy

B

Ben Zhong Tang

School of Science and Engineering, Guangdong Basic Research Center of Excellence for Aggregate Science, The Chinese University of Hong Kong (Shenzhen), Longgang, Shenzhen 518172, Guangdong, P. R. China

M

Marc Robert

Sorbonne Université

X

Xin Wang

W

William A. Goddard

R

Ruquan Ye

Department of Chemistry and State Key Laboratory of Marine Environmental Health