Wendi Xu, Fushou Liu, Linfeng Wang, Longshua Qin, Jian Guo, Fangtao Tan, Manni Liao, Peng Jiang, Ran Cui, Mingxi Zhang
Bacterial infections pose a significant barrier to wound healing, intensifying inflammation, hindering tissue regeneration, and exacerbating antibiotic resistance. Traditional dressings only passively protect or deliver antibiotics but lack dynamic therapeutic capabilities. We present a piezoelectric adhesive bandage integrating ∼6.7 nm BaTiO 3 nanoparticles within biocompatible PVA–agarose hydrogel for ultrasound-driven, drug-free antibacterial wound repair. Under ultrasound, embedded ultrasmall BaTiO 3 nanoparticles generate an internal piezoelectric field, promoting electron–hole separation. These charge carriers react with water and oxygen to produce reactive oxygen species (ROS), eradicating >90% Staphylococcus aureus in vitro in 10 min. The bandage has good mechanical strength, uniform nanoparticle dispersion, and strong piezoelectricity. In vitro, it boosts fibroblast migration and angiogenesis- and matrix-related gene expression. In a rat model of infected wounds, the bandage achieved 92.6% wound closure by day 14, with better epithelial regeneration, collagen deposition, neovascularization, and fewer inflammatory cytokines.