Teer Coatings Ltd., West Stone, Droitwich, Worcestershire WR9 9AS, United Kingdom.
Quantum Solid-State Physics, Department of Physics and Astronomy, KU Leuven, B-3001 Leuven, Belgium.
ACS Appl Mater Interfaces. 2022 Mar 2;14(8):10154-10166. doi: 10.1021/acsami.2c00263. Epub 2022 Feb 18.
Inside a spacecraft, the temperature and humidity, suitable for the human crew onboard, also creates an ideal breeding environment for the proliferation of bacteria and fungi; this can present a hazard to human health and create issues for the safe running of equipment. To address this issue, wear-resistant antimicrobial thin films prepared by magnetron sputtering were developed, with the aim to coat key internal components within spacecrafts. Silver and copper are among the most studied active bactericidal materials, thus this work investigated the antibacterial properties of amorphous carbon coatings, doped with either silver, silver and copper, or with silver clusters. The longevity of these antimicrobial coatings, which is heavily influenced by metal diffusion within the coating, was also investigated. With a conventional approach, amorphous carbon coatings were prepared by cosputtering, to generate coatings that contained a range of silver and copper concentrations. In addition, coatings containing silver clusters were prepared using a separate cluster source to better control the metal particle size distribution in the amorphous carbon matrix. The particle size distributions were characterized by grazing-incidence small-angle X-ray scattering (GISAXS). Antibacterial tests were performed under both terrestrial gravity and microgravity conditions, to simulate the condition in space. Results show that although silver-doped coatings possess extremely high levels of antimicrobial activity, silver cluster-doped coatings are equally effective, while being more long-lived, despite containing a lower absolute silver concentration.
在航天器内部,适合机组人员的温度和湿度也为细菌和真菌的繁殖创造了理想的环境;这可能对人类健康构成危害,并对设备的安全运行造成问题。为了解决这个问题,通过磁控溅射制备了耐磨抗菌薄膜,旨在涂覆航天器内部的关键部件。银和铜是研究最多的活性杀菌材料,因此这项工作研究了掺杂银、银和铜或银团簇的非晶碳涂层的抗菌性能。这些抗菌涂层的耐久性受涂层内金属扩散的严重影响,也得到了研究。采用常规方法,通过共溅射制备非晶碳涂层,以生成含有不同银和铜浓度的涂层。此外,使用单独的团簇源制备了含有银团簇的涂层,以更好地控制非晶碳基质中的金属颗粒尺寸分布。通过掠入射小角 X 射线散射(GISAXS)对颗粒尺寸分布进行了表征。在地球重力和微重力条件下进行了抗菌测试,以模拟太空环境。结果表明,尽管掺杂银的涂层具有极高的抗菌活性,但掺杂银团簇的涂层同样有效,尽管其绝对银浓度较低,但耐久性更高。