pH‐Mediated Strong Metal‐Support Interaction Construction Through Dynamic Fermi Level Tuning

K Kevin M. Siniard H Hailing Yu (Department of Chemistry Institute for Advanced Materials and Manufacturing University of Tennessee, Knoxville Knoxville Tennessee USA) S Shuai Yuan (State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of MOE, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering) Q Qingju Wang (Department of Chemistry, Institute for Advanced Materials and Manufacturing) X Xin Wang M Meijia Li C Caiqi Wang (Chemical Sciences Division) X Xiao Tong (Center for Functional Nanomaterials) A Alexander S. Ivanov Y Yuanpeng Zhang (Neutron Scattering Division) Y Yongqiang Cheng (Neutron Scattering Division, Neutron Science Directorate) M Murillo Longo Martins (Neutron Scattering Division) T Tao Wang F Felipe Polo‐Garzon (Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge Tennessee USA) D De‐en Jiang (Department of Chemical and Biomolecular Engineering Vanderbilt University Nashville Tennessee USA) Z Zili Wu (Chemical Sciences Division) Z Zhenzhen Yang S Sheng Dai

Abstract

ABSTRACT The metal–support interface is central to governing catalytic transformations. While strong metal–support interaction (SMSI) is an established strategy to tailor the morphology and electronic properties of supported metal catalysts, the role of interfacial charge redistribution in SMSI formation remains poorly understood and rarely leveraged. Here, we report a dual‐stimuli approach that combines pH modulation with ultrasonication to mediate SMSI construction in aqueous solution through dynamic Fermi level tuning. By leveraging in situ pH‐driven charge redistribution at the metal–support interface, we achieve controllable SMSI encapsulation of metal nanoparticles, as verified by electrochemical analysis, work function measurements, and x‐ray‐based techniques. The resulting catalysts exhibit tunable SMSI features and deliver enhanced activity and selectivity in hydrogenation reactions. This work establishes a facile strategy to modulate catalyst structure and electronic properties by exploiting Fermi level variation as a driving force, thereby advancing rational SMSI design and catalytic performance across diverse environments.

Article Details

Volume / Issue Vol. 65, Issue 18
Published April 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (18)

K

Kevin M. Siniard

H

Hailing Yu

Department of Chemistry Institute for Advanced Materials and Manufacturing University of Tennessee, Knoxville Knoxville Tennessee USA

S

Shuai Yuan

State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of MOE, Jiangsu Key Laboratory of Advanced Organic Materials, School of Chemistry and Chemical Engineering

Q

Qingju Wang

Department of Chemistry, Institute for Advanced Materials and Manufacturing

X

Xin Wang

M

Meijia Li

C

Caiqi Wang

Chemical Sciences Division

X

Xiao Tong

Center for Functional Nanomaterials

A

Alexander S. Ivanov

Y

Yuanpeng Zhang

Neutron Scattering Division

Y

Yongqiang Cheng

Neutron Scattering Division, Neutron Science Directorate

M

Murillo Longo Martins

Neutron Scattering Division

T

Tao Wang

F

Felipe Polo‐Garzon

Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge Tennessee USA

D

De‐en Jiang

Department of Chemical and Biomolecular Engineering Vanderbilt University Nashville Tennessee USA

Z

Zili Wu

Chemical Sciences Division

Z

Zhenzhen Yang

S

Sheng Dai