In situ generated hydrogen-bonding microenvironment in functionalized MOF nanosheets for enhanced CO <sub>2</sub> electroreduction

G Ge Yang J Jiajia Huang (Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China) W Weizhi Gu (Key Laboratory of Precision and Intelligent Chemistry, University of Science and Technology of China) Z Zhongyuan Lin (Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China) Q Qingyu Wang (National Synchrotron Radiation Laboratory (NSRL)) R Rong Kang (Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China) J Jing-Yao Liu (Institute of Theoretical Chemistry, College of Chemistry) Z Zhihu Sun (National Synchrotron Radiation Laboratory, University of Science and Technology of China) X Xusheng Zheng (National Synchrotron Radiation Laboratory) L Long Jiao H Hai-Long Jiang

Abstract

The microenvironment around catalytic sites plays crucial roles in enzymatic catalysis while its precise control in heterogeneous catalysts remains challenging. Herein, the coordinatively unsaturated metal nodes of Hf-based metal-organic framework nanosheets are simultaneously codecorated with catalytically active Co(salen) units and adjacent pyridyl-substituted alkyl carboxylic acids via a post modification route. By varying pyridyl-substituted alkyl carboxylic acids, the spatial positioning of the N atom in pyridine group relative to adjacent Co(salen) can be precisely controlled. Notably, the 3-(pyridin-4-yl)propionic acid, with para -position pyridine N atom, maximally improves the electrocatalytic CO 2 reduction performance of Co(salen) unit, far superior to other counterparts. Mechanism investigations reveal that the pyridine unit of 3-(pyridin-4-yl)propionic acid is optimally positioned relative to Co(salen) and undergoes in situ reduction to pyridinyl radical under working potentials. This greatly facilitates the stabilization of *COOH intermediate via hydrogen-bonding interaction, lowering the formation energy barrier of *COOH and therefore boosting CO 2 electroreduction.

Article Details

Volume / Issue Vol. 122, Issue 15
Published April 15, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

G

Ge Yang

J

Jiajia Huang

Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China

W

Weizhi Gu

Key Laboratory of Precision and Intelligent Chemistry, University of Science and Technology of China

Z

Zhongyuan Lin

Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China

Q

Qingyu Wang

National Synchrotron Radiation Laboratory (NSRL)

R

Rong Kang

Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China

J

Jing-Yao Liu

Institute of Theoretical Chemistry, College of Chemistry

Z

Zhihu Sun

National Synchrotron Radiation Laboratory, University of Science and Technology of China

X

Xusheng Zheng

National Synchrotron Radiation Laboratory

L

Long Jiao

H

Hai-Long Jiang