Synergistic Lewis Acid Photocatalysis Over Cluster‐Defect‐Engineered UiO‐66 for Efficient Liquid Biomass Upgrading

H Hao Wang (Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA) L Li‐Long Zhang (State Key Laboratory of Green Pesticide State‐Local Joint Laboratory For Comprehensive Utilization of Biomass Center For R&D of Fine Chemicals of Guizhou University Guiyang P. R. China) H Haimei Xu (Centre For Atomaterials and Nanomanufacturing (CAN) School of Science RMIT University Melbourne Australia) B Baohua Jia (Centre for Atomaterials and Nanomanufacturing (CAN), School of Science) L Liqun Ye T Tianyi Ma (Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University) H Heng Zhang

Abstract

ABSTRACT Defect engineering provides new opportunities to overcome the intrinsic limitations of metal–organic frameworks (MOFs) in photocatalysis. Herein, a cluster‐defect engineering (CDE) strategy is employed to modify the pristine UiO‐66 framework, wherein Zn incorporation followed by selective acid etching yields defect‐rich A/(Zn,Zr)UiO‐66 catalysts featuring hierarchical porous architectures and abundant Lewis (L) acid sites. Optical and photoelectrochemical analyses confirm that CDE broadens visible‐light harvesting, narrows the bandgap, and prolongs carrier lifetimes. The synergistic interplay between L acid sites and photocatalysis over A/(Zn,Zr)UiO‐66 results in an excellent photocatalytic performance in biodiesel production via oleic acid (OA) esterification with methanol (CH 3 OH) under mild reaction conditions, outperforming pristine UiO‐66. Notably, the optimized A/(Zn,Zr)UiO‐66‐0.2 achieves a remarkable 99.3% biodiesel yield under mild conditions, alongside superior stability and reusability. Further, in situ spectroscopic investigations and density functional theory (DFT) calculations disclose that CDE lowers the coupling barrier of OA and CH 3 O• radicals by strengthening OA adsorption and activation as well as facilitating charge stabilization at unsaturated Zr sites. This work highlights CDE as an ingenious strategy for tailoring the electronic configuration and interfacial chemistry of MOFs, offering a versatile platform for visible‐light‐driven biomass upgrading and sustainable fuel production.

Article Details

Volume / Issue Vol. 65, Issue 27
Published July 01, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

H

Hao Wang

Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA

L

Li‐Long Zhang

State Key Laboratory of Green Pesticide State‐Local Joint Laboratory For Comprehensive Utilization of Biomass Center For R&D of Fine Chemicals of Guizhou University Guiyang P. R. China

H

Haimei Xu

Centre For Atomaterials and Nanomanufacturing (CAN) School of Science RMIT University Melbourne Australia

B

Baohua Jia

Centre for Atomaterials and Nanomanufacturing (CAN), School of Science

L

Liqun Ye

T

Tianyi Ma

Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University

H

Heng Zhang