Fully Exposed Platinum‐Palladium Heteronuclear Cluster for Enhanced Multi‐Step Hydrogenation of Dinitroaromatics

Y Yang Si (Max-Planck-Institute of Molecular Plant Physiology, Postdam Science Park) H Huan Ma J Jiawei Chen (State Key Laboratory of Advanced Materials for Intelligent Sensing and Key Laboratory of Organic Integrated Circuits, Ministry of Education & Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Institute of Molecular Plus, Department of Chemistry) Z Zhehan Ying S Shengling Xiang (Department of Physics and Center for Quantum Materials, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon 999077, Hong Kong SAR, P. R. China) M Mi Peng X Xiaowen Chen (School of Laboratory Medicine and Biotechnology, Southern Medical University) B Bo Sun G Guodong Wen H Hongbo Yu (Department of Psychological and Brain Sciences, University of California Santa Barbara) Y Yue Wang J Jingwang Zhang Y Yu Sun X Xiaodong Wen (Advanced Imaging Research Center, University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, Texas 75390, United States) N Ning Wang J Jiangyong Diao D Ding Ma H Hongyang Liu

Abstract

ABSTRACT Fully exposed cluster catalysts (FECCs) exhibit significant potential for hydrogenation reactions due to their maximized atom utilization efficiency and multi‐active sites. However, further enhancing their catalytic performance in complex multi‐step hydrogenations remains challenging. Herein, we report a fully exposed Pt‐Pd heteronuclear cluster (Pt 4 Pd 1 /ND@G), featuring adjacent Pd single atom (Pd 1 ) modified fully exposed Pt clusters (with an average number of atoms of 4). Structural characterization and theoretical calculations reveal that the adjacent Pd 1 serves as an additional adsorption site for the nitro group in dinitrotoluene, inducing the dinitrotoluene molecule to adopt a bidentate configuration between the Pt clusters and the Pd 1 site and achieving the optimal adsorption strength. Concurrently, charge transfer from Pd 1 to Pt clusters elevates the charge density of the Pt clusters, facilitating H 2 dissociation. As a result, the Pt 4 Pd 1 /ND@G catalyst exhibits superior activity and stability in the multi‐step hydrogenation of DNT, achieving a remarkable turnover frequency (TOF) of 64,109 h −1 , substantially surpassing the performance of state‐of‐the‐art catalysts reported in the literature. This work provides a strategic guideline for designing FECCs and offers valuable insights into atomic‐level manipulation of catalytic sites for multi‐step hydrogenation reactions.

Article Details

Volume / Issue Vol. 65, Issue 19
Published May 04, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (18)

Y

Yang Si

Max-Planck-Institute of Molecular Plant Physiology, Postdam Science Park

H

Huan Ma

J

Jiawei Chen

State Key Laboratory of Advanced Materials for Intelligent Sensing and Key Laboratory of Organic Integrated Circuits, Ministry of Education & Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Institute of Molecular Plus, Department of Chemistry

Z

Zhehan Ying

S

Shengling Xiang

Department of Physics and Center for Quantum Materials, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon 999077, Hong Kong SAR, P. R. China

M

Mi Peng

X

Xiaowen Chen

School of Laboratory Medicine and Biotechnology, Southern Medical University

B

Bo Sun

G

Guodong Wen

H

Hongbo Yu

Department of Psychological and Brain Sciences, University of California Santa Barbara

Y

Yue Wang

J

Jingwang Zhang

Y

Yu Sun

X

Xiaodong Wen

Advanced Imaging Research Center, University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, Texas 75390, United States

N

Ning Wang

J

Jiangyong Diao

D

Ding Ma

H

Hongyang Liu