Tan Meiyan, Wen Hailong, Luo Yuxin, Wang Zhengdi, Zhang Junlu, He Jiuyang, Geng Zhishuai, Song Ningning, Liang Minmin
Experimental Center of Advanced Materials, School of Materials Science & Engineering, Beijing Institute of Technology, Beijing 100081, China.
ACS Appl Mater Interfaces. 2025 Jun 18;17(24):36100-36108. doi: 10.1021/acsami.5c07302. Epub 2025 Jun 9.
Multifunctional surface coatings with both antibacterial and flame-retardant properties are of great significance for enhancing the safety in critical applications. Herein, we report the development of a Ni-Co nanozyme-based composite coating that exhibits synergistic antibacterial and flame-retardant performance. The incorporation of dual-metal active sites within a hierarchical nanowire architecture endows the NiCoS nanozyme with a mechano-catalytic antibacterial mechanism, enabling efficient and broad-spectrum bacterial inhibition. Additionally, the Ni-Co components facilitate the formation of a compact, highly graphitized char layer during combustion, serving as an effective physical barrier against heat and oxygen. As a result, the coating achieved a 23.6% reduction in the peak heat release rate (PHRR) while maintaining outstanding antibacterial performance. This work presents a promising strategy for the rational design of multifunctional composite coatings via nanozyme integration that meets the urgent need for advanced protection materials in safety-critical environments.
具有抗菌和阻燃性能的多功能表面涂层对于提高关键应用中的安全性具有重要意义。在此,我们报道了一种基于镍钴纳米酶的复合涂层的开发,该涂层具有协同抗菌和阻燃性能。在分级纳米线结构中引入双金属活性位点赋予了NiCoS纳米酶一种机械催化抗菌机制,能够实现高效、广谱的细菌抑制。此外,镍钴成分有助于在燃烧过程中形成致密、高度石墨化的炭层,作为一种有效的隔热和隔氧物理屏障。结果,该涂层在保持出色抗菌性能的同时,峰值热释放速率(PHRR)降低了23.6%。这项工作通过纳米酶整合为合理设计多功能复合涂层提出了一种有前景的策略,满足了安全关键环境中对先进防护材料的迫切需求。