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具有长期抗菌活性的铜-二氧化钛纳米复合涂层的超声辅助电沉积

Ultrasonic-Assisted Electrodeposition of Cu-TiO Nanocomposite Coatings with Long-Term Antibacterial Activity.

作者信息

Chen Jiahuan, He Zhen, Zheng Songlin, Gao Wei, Wang Yuxin

机构信息

School of Materials Science and Engineering, Jiangsu University of Science and Technology, Zhenjiang 212000, Jiangsu, China.

School of Pharmaceutical & Chemical Technology, Zhenjiang College, Zhenjiang 212028, Jiangsu, China.

出版信息

ACS Appl Mater Interfaces. 2024 Dec 4;16(48):66695-66705. doi: 10.1021/acsami.4c14145. Epub 2024 Nov 19.

Abstract

Bacterial adhesion, colonization, and spread on aluminum alloy surfaces pose significant risks to human health and public safety. To address these issues, this investigation employed an ultrasonic-assisted electrodeposition method to synthesize long-lasting antibacterial Cu-TiO nanocomposite coatings on porous anodized aluminum oxide (AAO) substrates. Leveraging the cavitation effect of ultrasound, this approach fostered the dispersive incorporation of TiO nanoparticles into the resulting composite coating, thereby expediting the crystallization process of electrodeposition and refining the granular structure. With an optimal concentration of 4 g/L of TiO nanoparticles, the resultant C-4T composite coating displayed a dense and homogeneous microstructure, with TiO nanoparticles predominantly localized at the grain boundaries of Cu grains. Rigorous testing revealed that the surface of the C-4T sample maintained an enduring antibacterial efficacy of 96.8%, even after the outer Cu-TiO layer was worn away. This high level of durability stems from the continuous release of Cu ions and reactive oxygen species (ROS) from the coating's composite region (CR) composed of a porous AAO film and Cu-TiO. The porous AAO film, serving as "nanocontainers," offers an ideal deposition carrier for the uniform Cu-TiO composite coating. These agents actively disrupt the integrity and chemical composition of () cells, leading to significant bacterial cell damage and death, thereby conferring superior and persistent antibacterial effects even after specific polishing. This study advances the field of durable antibacterial surface treatments and opens avenues for the sanitary use of nanocomposite coatings in the public health and medical sectors.

摘要

细菌在铝合金表面的粘附、定植和扩散对人类健康和公共安全构成重大风险。为了解决这些问题,本研究采用超声辅助电沉积方法,在多孔阳极氧化铝(AAO)基底上合成了具有长效抗菌性能的Cu-TiO纳米复合涂层。利用超声的空化效应,该方法促进了TiO纳米颗粒在所得复合涂层中的分散掺入,从而加速了电沉积的结晶过程并细化了颗粒结构。当TiO纳米颗粒的最佳浓度为4 g/L时,所得的C-4T复合涂层呈现出致密且均匀的微观结构,TiO纳米颗粒主要位于Cu晶粒的晶界处。严格测试表明,即使外层Cu-TiO层被磨损后,C-4T样品表面仍保持96.8%的持久抗菌效果。这种高耐久性源于由多孔AAO膜和Cu-TiO组成的涂层复合区域(CR)持续释放Cu离子和活性氧(ROS)。多孔AAO膜作为“纳米容器”,为均匀的Cu-TiO复合涂层提供了理想的沉积载体。这些物质会主动破坏()细胞的完整性和化学成分,导致细菌细胞显著损伤和死亡,从而即使经过特定抛光后也能赋予卓越且持久的抗菌效果。本研究推动了耐用抗菌表面处理领域的发展,并为纳米复合涂层在公共卫生和医疗领域的卫生应用开辟了道路。

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