Decoupling‐Facilitated Mass‐Charge Transfer via Dual‐Interface Engineering for Efficient CO <sub>2</sub> Electrolysis

S Silong Dong (Institute of Carbon Neutrality) Y Yinyi Liu (Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou Guangdong China) B Bohua Ren (State Key Laboratory of Powder Metallurgy, College of Chemistry and Chemical Engineering) H Haoyang Xiong (Institute of Carbon Neutrality) K Kunwei Zhong (Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou Guangdong China) M Mingliang Jin G Guobin Wen (State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering) X Xin Wang Z Zhongwei Chen (Power Battery & Systems Research Center, State Key Laboratory of Catalysis)

Abstract

ABSTRACT The gas‐electrolyte‐electrode triple‐phase interfaces (TPIs) critically govern the kinetics of the electrochemical CO 2 reduction reaction (CO 2 RR) by regulating concerted proton‐electron transfer processes. However, sluggish mass transfer and the unbalanced adsorption of key intermediates within the local microenvironment of TPI remain major obstacles to efficient multicarbon product formation. Here, we report a dual‐interface strategy featuring amphiphilic and biphasic architectures to decouple mass‐charge transfer, achieved through in‐situ electrochemical activation of a polydimethylsiloxane (PDMS)‐modified Cu‐BTC electrode. The hydrophilic/hydrophobic interface promotes the synergistic mass transfer of CO 2 and protons within the TPI microenvironment, whereas the amorphous/crystalline interface modulates the electronic structure of catalytic active sites to optimize the adsorption kinetics of key intermediates. Such decoupling‐mediation accelerated C 2 H 4 Faradaic efficiency (FE) exceeding 86% at ‐0.9 V (vs. reversible hydrogen electrode, RHE), over 2.5 times higher than that of the control groups. This work highlights the potential of dual‐interface decoupling engineering to simultaneously optimize CO 2 mass transport pathways and intermediate adsorption kinetics, thereby enabling highly efficient electrosynthesis of C 2 H 4 .

Article Details

Volume / Issue Vol. 38, Issue 40
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

S

Silong Dong

Institute of Carbon Neutrality

Y

Yinyi Liu

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou Guangdong China

B

Bohua Ren

State Key Laboratory of Powder Metallurgy, College of Chemistry and Chemical Engineering

H

Haoyang Xiong

Institute of Carbon Neutrality

K

Kunwei Zhong

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology South China Academy of Advanced Optoelectronics South China Normal University Guangzhou Guangdong China

M

Mingliang Jin

G

Guobin Wen

State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering

X

Xin Wang

Z

Zhongwei Chen

Power Battery & Systems Research Center, State Key Laboratory of Catalysis