Constructing Pillar‐Layered Covalent Organic Frameworks via Metal–Ligand Coordination for Electrochemical CO<sub>2</sub> Reduction

T Tianfu Yang H Hongyin Hu (Institute of Materials Research Tsinghua Shenzhen International Graduate School Tsinghua University Shenzhen China) Y Yan Wang X Xinqi Chen J Jianxian Fan (Yunnan Key Laboratory for Micro/Nano Materials and Technology National Center for International Research on Photoelectric and Energy Materials School of Materials and Energy Yunnan University Kunming 650091 P. R. China) D Donghua Li S Shuangbin Liu (Yunnan Key Laboratory for Micro/Nano Materials and Technology National Center for International Research on Photoelectric and Energy Materials School of Materials and Energy Yunnan University Kunming 650091 P. R. China) J Jinmei Li (NHC Key Laboratory of Biotechnology for Microbial Drugs, State Key Laboratory of Bioactive Substance & Function of Natural Medicines, Institute of Medicinal Biotechnology) T Tianwei He S Shuanglong Lu (Key Laboratory of Synthetic and Biological Colloids Ministry of Education School of Chemical and Material Engineering Jiangnan University Wuxi 214122 P. R. China) L Li Qiu

Abstract

AbstractGrowing global concerns over energy security and climate change have intensified efforts to develop sustainable strategies for electrochemical CO2 reduction (eCO2RR). Covalent Organic Frameworks (COFs) have emerged as promising electrocatalysts for eCO2RR due to their tunable structures, high surface areas, and abundance of active sites. However, the performance of 2D COFs is often limited by layer stacking, which restricts active site exposure and reduces selectivity. To overcome these challenges, a new class of COFs known as pillar‐layered COFs (PL‐COFs) is developed featuring adjustable interlayer spacing and a 3D architecture. Characterization using PXRD, TEM, XPS, and EIS confirmed the successful integration of pillar molecules, which leads to increased interlayer spacing, crystallinity, and porosity. These structural advancements result in significantly improved electrochemical activity and selectivity for CO2‐to‐CO conversion. Density functional theory simulations revealed that enhanced CO2 adsorption and CO desorption contribute to the outstanding performance of PL‐COF‐1, which boasts the largest interlayer spacing. This material achieved an impressive Faradaic efficiency of 91.3% and demonstrated a significant current density, outperforming both the original COF‐366‐Co and PL‐COF‐2. These findings highlight the effectiveness of the pillaring strategy in optimizing COF‐based electrocatalysts, paving the way for next‐generation materials for CO2 reduction and sustainable energy conversion.

Article Details

Volume / Issue Vol. 37, Issue 10
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

T

Tianfu Yang

H

Hongyin Hu

Institute of Materials Research Tsinghua Shenzhen International Graduate School Tsinghua University Shenzhen China

Y

Yan Wang

X

Xinqi Chen

J

Jianxian Fan

Yunnan Key Laboratory for Micro/Nano Materials and Technology National Center for International Research on Photoelectric and Energy Materials School of Materials and Energy Yunnan University Kunming 650091 P. R. China

D

Donghua Li

S

Shuangbin Liu

Yunnan Key Laboratory for Micro/Nano Materials and Technology National Center for International Research on Photoelectric and Energy Materials School of Materials and Energy Yunnan University Kunming 650091 P. R. China

J

Jinmei Li

NHC Key Laboratory of Biotechnology for Microbial Drugs, State Key Laboratory of Bioactive Substance & Function of Natural Medicines, Institute of Medicinal Biotechnology

T

Tianwei He

S

Shuanglong Lu

Key Laboratory of Synthetic and Biological Colloids Ministry of Education School of Chemical and Material Engineering Jiangnan University Wuxi 214122 P. R. China

L

Li Qiu