材料科学
钛酸钡
骨整合
压电
兴奋剂
涂层
生物膜
化学工程
纳米棒
氧气
纳米技术
生物医学工程
活性氧
纳米线
纳米晶
复合数
立方氧化锆
带隙
催化作用
作者
Panyu Jiang,Chaofeng Wang,Shuilin Wu,Congyang Mao,Hanpeng Liu,Hui Jiang,Yufeng Zheng,Shengli Zhu,Zhaoyang Li,Cui Z,Xiangmei Liu
标识
DOI:10.1002/adfm.202529205
摘要
ABSTRACT Titanium‐based bone implants face significant clinical challenges, including drug‐resistant bacterial infections, biofilm formation, and insufficient bone integration. To overcome these limitations, a hydroxyapatite/nitrogen‐doped barium titanate composite coating (Ti‐HA/N‐BTO) was developed. Interstitial nitrogen doping enhances the piezoelectric performance and ultrasonic catalytic activity of BTO by inducing its lattice distortion and reducing its band gap. Band bending caused by ultrasound and the reduced band gap promote the efficient production of reactive oxygen species (ROS). After 15 min of ultrasonic treatment at 1.5 W cm −2 , Ti‐HA/N‐BTO showed significant inhibitory rates against both Staphylococcus aureus ( S. aureus ) and methicillin‐resistant Staphylococcus aureus (MRSA), and effectively removed mature biofilms. Antibacterial mechanisms include ROS‐mediated bacterial membrane disruption and bacterial electron transfer induced by the piezoelectric effect, which interferes with bacterial respiratory chain function and energy metabolism, resulting in comprehensive damage to bacterial structure and metabolic activity. Moreover, the hydroxyapatite and microcurrents produced by the coating have high osteogenic activity, promoting the osteogenic differentiation of MC3T3‐E1 cells. The coating showed potent antibacterial activity and bone‐promoting abilities in SD rat models of infected femoral defects. This study provides a novel strategy for designing multifunctional implants by leveraging doping engineering in piezoelectric materials to simultaneously address infection control and bone integration.
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