Breaking Symmetry via Bamboo‐Inspired Gradient Engineering for Triple‐Field Synergistic H <sub>2</sub> O <sub>2</sub> Production

K Ke‐Qiang Shi (College of Materials and Chemistry China Jiliang University Hangzhou P. R. China) C Cheng‐Chao Jin (College of Materials and Chemistry China Jiliang University Hangzhou P. R. China) J Jia‐Hao Sun (College of Materials and Chemistry China Jiliang University Hangzhou P. R. China) Z Zhi‐Yu Gui (College of Materials and Chemistry China Jiliang University Hangzhou P. R. China) Y Yu‐Xing Cai (College of Materials and Chemistry China Jiliang University Hangzhou P. R. China) D Dai‐Ming Liu (College of Electromechanical Engineering Shandong Engineering Laboratory for Preparation and Application of High‐performance Carbon‐Materials Qingdao University of Science &amp; Technology Qingdao P. R. China) X Xu‐Ting Qiu (Yongjiang Laboratory Ningbo P. R. China) L Lan Li L Ling‐Xia Zhang (School of Chinese Materia Medica Nanjing University of Chinese Medicine Nanjing Jiangsu China) Z Zhi Chen Q Qiong Wu (State Key Laboratory of Magnetic Resonance Spectroscopy and Imaging, National Center for Magnetic Resonance in Wuhan, Wuhan National Laboratory for Optoelectronics, Wuhan Institute of Physics and Mathematics, Innovation Academy for Precision Measurement Science and Technology)

Abstract

ABSTRACT Piezocatalysis is a promising chemical synthesis technique, but it is generally restricted to noncentrosymmetric materials, severely limiting catalyst selection. The flexoelectric effect bypasses this symmetry constraint. However, its catalytic contribution is often overlooked, as conventional materials generate only modest strain gradients. Inspired by the hierarchical radial gradients in natural bamboo, we developed radial‐gradient BiO(Cl, Br) nanosheets. This architecture breaks the centrosymmetry of BiOCl to invoke robust piezoelectricity while simultaneously amplifying flexoelectricity through built‐in mechanical heterogeneity. Driven by a triple‐field synergism of built‐in, piezo‐, and flexoelectric fields, the BiO(Cl, Br) nanosheets achieve a high H 2 O 2 production rate of 742.2 µmol g −1 h −1 , approximately 423% of pristine BiOCl. Theoretical analysis reveals that the mechanical strain and Br doping synergistically modulate the work function and the p ‐band center, facilitating spin‐selective O 2 orbital coupling and reducing the activation barrier for superoxide formation. This work provides an effective strategy to break through symmetry constraints in piezocatalysis, paving the way for the rational design of high‐performance mechano‐catalysts through gradient engineering.

Article Details

Volume / Issue Vol. 38, Issue 37
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

K

Ke‐Qiang Shi

College of Materials and Chemistry China Jiliang University Hangzhou P. R. China

C

Cheng‐Chao Jin

College of Materials and Chemistry China Jiliang University Hangzhou P. R. China

J

Jia‐Hao Sun

College of Materials and Chemistry China Jiliang University Hangzhou P. R. China

Z

Zhi‐Yu Gui

College of Materials and Chemistry China Jiliang University Hangzhou P. R. China

Y

Yu‐Xing Cai

College of Materials and Chemistry China Jiliang University Hangzhou P. R. China

D

Dai‐Ming Liu

College of Electromechanical Engineering Shandong Engineering Laboratory for Preparation and Application of High‐performance Carbon‐Materials Qingdao University of Science &amp; Technology Qingdao P. R. China

X

Xu‐Ting Qiu

Yongjiang Laboratory Ningbo P. R. China

L

Lan Li

L

Ling‐Xia Zhang

School of Chinese Materia Medica Nanjing University of Chinese Medicine Nanjing Jiangsu China

Z

Zhi Chen

Q

Qiong Wu

State Key Laboratory of Magnetic Resonance Spectroscopy and Imaging, National Center for Magnetic Resonance in Wuhan, Wuhan National Laboratory for Optoelectronics, Wuhan Institute of Physics and Mathematics, Innovation Academy for Precision Measurement Science and Technology