Breaking the Activity‐Selectivity Trade‐off in Direct Levulinate Hydrodeoxygenation to Pentanoic Biofuels over La‐Modulated Ru‐Zeolite Catalysts

L Lu Lin J Jiang He X Xiaodan Yan H Haifeng Qi (Max Planck-Cardiff Centre on the Fundamentals of Heterogeneous Catalysis FUNCAT, Translational Research Hub, Cardiff University, Maindy Road, Cardiff CF24 4HQ, U.K.) T Tiehong Chen (Institute of New Catalytic Materials Science School of Materials Science and Engineering Key Laboratory of Advanced Energy Materials Chemistry (MOE) Nankai University 38 Tongyang Road Tianjin 300350 China) J Jinlu He (College of Chemistry and Chemical Engineering) Y Yuanshuai Liu (Qingdao Institute of Bioenergy and Bioprocess Technology Chinese Academy of Sciences 189 Songling Road Qingdao 266101 China) Z Zhijie Wu (Genecradle Therapeutics, Beijing) J Jian Liu W Wenhao Luo (Inner Mongolia Key Laboratory of Rare Earth Catalysis College of Chemistry and Chemical Engineering Inner Mongolia University 24 Zhaojun Road Hohhot 010021 China)

Abstract

Abstract Disentangling the activity‐selectivity trade‐off in hydrodeoxygenation (HDO) of biomass‐derived oxygenates has been a great challenge in biomass valorization and related tandem catalysis, by virtue of involving a series of reactions in parallel and in cascade. Herein, we demonstrate the importance of La modulation for Ru‐zeolite combinations in the case of direct HDO of neat ethyl levulinate (EL) into ethyl pentanoate (EP). An unprecedented EP yield of 80% and an EP turnover rate (TOR) of 224 mol EP ·mol Ru −1 ·h −1 , together with excellent stability, were obtained for the optimal Ru/2.8La‐Y catalyst for the first time, compared to the current reported “performance ceiling” of EP yields of <40% and EP TORs of <120 mol EP ·mol metal −1 ·h −1 under similar conditions. Optimal La modulation could maximize the density of the active Brønsted acid sites and efficiently attenuate the acid strength, thus enhancing both activity and selectivity in the direct HDO of EL into EP while suppressing the further hydrolysis reactions that consume EP. This study provides an effective approach to regulate the acid properties of metal‐zeolite bifunctional catalysts, in particular in mediation of compromise in acid density and acid strength factors, for breaking the activity‐selectivity trade‐off in biomass valorization and beyond.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

L

Lu Lin

J

Jiang He

X

Xiaodan Yan

H

Haifeng Qi

Max Planck-Cardiff Centre on the Fundamentals of Heterogeneous Catalysis FUNCAT, Translational Research Hub, Cardiff University, Maindy Road, Cardiff CF24 4HQ, U.K.

T

Tiehong Chen

Institute of New Catalytic Materials Science School of Materials Science and Engineering Key Laboratory of Advanced Energy Materials Chemistry (MOE) Nankai University 38 Tongyang Road Tianjin 300350 China

J

Jinlu He

College of Chemistry and Chemical Engineering

Y

Yuanshuai Liu

Qingdao Institute of Bioenergy and Bioprocess Technology Chinese Academy of Sciences 189 Songling Road Qingdao 266101 China

Z

Zhijie Wu

Genecradle Therapeutics, Beijing

J

Jian Liu

W

Wenhao Luo

Inner Mongolia Key Laboratory of Rare Earth Catalysis College of Chemistry and Chemical Engineering Inner Mongolia University 24 Zhaojun Road Hohhot 010021 China