Variations of Alloying Site Density in Pd <sub>1</sub> Cu Single‐Atom Alloy Catalysts Lead to Shifted Product Yields in Electrochemical CO Reduction

Z Zehua Jin (Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA) Y Yuting Xu (Section of Hematology and Medical Oncology, Department of Medicine, Tulane University School of Medicine) I Isaac Kojo Seim (Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA) M Manjeet Chhetri (Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA) S Sungsik Lee (X-ray Science Division) J Jonathan D. Poplawsky (Center For Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge Tennessee USA) H Hsin‐Yun Joy Chao (Center For Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge Tennessee USA) J James Burns L Lingzhe Fang (Department of Chemistry and Biochemistry) T Tao Li M Minda Zou (Department of Materials Science and Engineering Clemson University Clemson South Carolina USA) T Tianyi Zhou J Jianhua Tong (Department of Materials Science and Engineering Clemson University Clemson South Carolina USA) F Fanglin Che (Department of Chemical Engineering) M Ming Yang

Abstract

ABSTRACT Single‐atom alloy (SAA) catalysis research often reports that a SAA catalyst, in the general formulation of a single‐atom metal M1 alloyed on the surface of the host metal M2, facilitates a probe reaction. However, for catalytic reactions that present decoupled rate‐ and selectivity‐limiting steps, the alloying site density may significantly manipulate these independent steps, but it has rarely been explicitly examined for any SAA systems. Herein, using the electrocatalytic CO reduction as a probe reaction, we report that the nominal Pd 1 Cu cube SAA catalysts exhibit distinctive high reactivity toward ethylene or ethanol, respectively, depending on whether the Pd atoms are in dilute or crowded forms. Although the presence of single‐atom Pd embedded on Cu uniformly promotes CHO* formation and C─C coupling, the dilute‐Pd 1 Cu favors ethylene formation by enabling low‐barrier C─O cleavage from a flat CH 2 CH 2 OH* intermediate, whereas the crowded‐Pd 1 Cu promotes ethanol formation by stabilizing an upright hydrogenation transition state of the same intermediate. Furthermore, we present evidence that the catalytic chemistry of crowded Pd 1  species differs from that of the Pd 2 ‐dimer; the latter, albeit unstable, steers reaction selectivity to acetate instead. These results uncovered the underappreciated importance of controlling SAA catalytic chemistry from the perspective of single‐atom site densities.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (15)

Z

Zehua Jin

Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA

Y

Yuting Xu

Section of Hematology and Medical Oncology, Department of Medicine, Tulane University School of Medicine

I

Isaac Kojo Seim

Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA

M

Manjeet Chhetri

Department of Chemical and Biomolecular Engineering Clemson University Clemson South Carolina USA

S

Sungsik Lee

X-ray Science Division

J

Jonathan D. Poplawsky

Center For Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge Tennessee USA

H

Hsin‐Yun Joy Chao

Center For Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge Tennessee USA

J

James Burns

L

Lingzhe Fang

Department of Chemistry and Biochemistry

T

Tao Li

M

Minda Zou

Department of Materials Science and Engineering Clemson University Clemson South Carolina USA

T

Tianyi Zhou

J

Jianhua Tong

Department of Materials Science and Engineering Clemson University Clemson South Carolina USA

F

Fanglin Che

Department of Chemical Engineering

M

Ming Yang