Haipeng Hu, Xingjian Gao, Yingcong Wei, Lele Wang, Zhishan Luo, Yuee Xie, Jing Xu
Developing efficient strategies to overcome catalytic performance limitations is essential for advancing photocatalytic and piezocatalysis applications. Herein, we propose a strategy that enhances catalytic performance by inducing compressive lattice strain via oxygen doping, to modulate the p-band center. Our study reveals that oxygen incorporation into CdS induces lattice contraction, leading to an upshift of the sulfur p-band center and an increased electronic density of states near the Fermi level, thereby strengthening the adsorption of reaction intermediates. Experimentally, O-doped CdS exhibits a 5.2-fold improvement in photocatalytic hydrogen evolution and a 3.8-fold increase in photocatalytic degradation activity, along with a 4.3-fold enhancement in piezocatalytic degradation efficiency. This work offers a new pathway for the design of efficient and stable catalytic materials through strain engineering.