Spontaneous Symmetry Breaking via Metal‐Triggered Surface Defect Engineering for Durable Piezocatalytic Hydrogen Evolution

L Lujie Ruan (College of Physics, Chongqing University 1 , Chongqing 401331,) D Dazhong Sun (College of Physics and Center of Quantum Materials and Devices) J Jiangping Ma (College of Physics, Chongqing University 1 , Chongqing 401331,) P Pengfei Luo Y Yajie Feng X Xiaoxing Wang H Haodi Ran (Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China) L Li‐Yong Gan (College of Physics and Center of Quantum Materials and Devices Chongqing University Chongqing China) G Guoyu Wang J Ji‐Yan Dai (Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China) X Xiaoyuan Zhou (College of Physics and Institute of Advanced Interdisciplinary Studies)

Abstract

ABSTRACT Piezocatalysis, which converts ubiquitous mechanical energy into chemical fuels, offers a sustainable route for distributed hydrogen production. However, progress in this field has largely been limited to material–level studies, often characterized by weak polarization, insufficient active sites, and a lack of long–term device–level demonstrations. Here, we propose a metal–triggered surface defect strategy that integrates surface metal anchoring with defect formation to simultaneously enhance polarization and increase the density of active sites. Using Au–ZnSnO 3 as a model system, we demonstrate that Au anchoring spontaneously induces Zn vacancy formation, breaking surface symmetry and strengthening the piezoelectric response by more than fivefold. These synergistic effects result in a 3.7‐fold enhancement in the hydrogen evolution rate, placing this material among the top‐performing piezocatalysts. Crucially, integrating the catalyst into a custom‐designed continuous–flow microreactor enables the first demonstration of ultra–long, device–level piezocatalytic hydrogen production for over 158 h, establishing a new benchmark for durability in this field. Experimental and theoretical analyses reveal that Au anchoring reduces the formation energy of Zn vacancies and optimizes hydrogen adsorption energetics, thereby achieving a balance between proton reduction and hydrogen desorption. This work establishes metal–triggered surface defect engineering as a promising design strategy that links structural symmetry with catalytic reactivity in mechanically driven energy conversion systems.

Article Details

Volume / Issue Vol. 38, Issue 42
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

L

Lujie Ruan

College of Physics, Chongqing University 1 , Chongqing 401331,

D

Dazhong Sun

College of Physics and Center of Quantum Materials and Devices

J

Jiangping Ma

College of Physics, Chongqing University 1 , Chongqing 401331,

P

Pengfei Luo

Y

Yajie Feng

X

Xiaoxing Wang

H

Haodi Ran

Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China

L

Li‐Yong Gan

College of Physics and Center of Quantum Materials and Devices Chongqing University Chongqing China

G

Guoyu Wang

J

Ji‐Yan Dai

Department of Applied Physics The Hong Kong Polytechnic University Hong Kong China

X

Xiaoyuan Zhou

College of Physics and Institute of Advanced Interdisciplinary Studies