Xu Zhihua, Zhang Renyin, Zhang Tongtong, Niu Zhihan, Zhang Min, Shi Feng
College of Life Science, Shihezi University, Shihezi, 832003, China.
Sci Rep. 2025 Apr 27;15(1):14711. doi: 10.1038/s41598-025-99577-6.
We have developed an innovative nanoparticle preparation technique. It utilised a high-pressure steam sterilisation pot as the reaction equipment, simplifying biomedical nanoparticle synthesis and sterilisation processes. Gold nanoparticles (AuNPs), silver nanoparticles (AgNPs), and two types of hydrotalcite-layered nanoparticles (LDHs) were prepared successfully. The nanoparticles had a regular morphology and good dispersion, which is consistent with the characteristics of products prepared using traditional methods. The average particle sizes of AuNPs and AgNPs were 25 and 38 nm. Ultraviolet absorption peaks of AuNPs and AgNPs were observed at 520 and 436 nm, respectively. The average particle sizes of the LDHs used for anion and cation intercalation were 82 and 90 nm, respectively. The elemental composition of the LDHs included Co, Mg, Al, C, and O. Functional group characterisation results showed that the surfaces of the four nanoparticles contained abundant functional groups. The high-pressure sterilisation method used in this study produced sterile nanoparticles with good performance in a single step. It avoided the problems associated with the physicochemical property changes in the nanoparticles caused by the secondary sterilisation operations, thereby ensuring their usability in biomedical applications. Thus, the method provides a scalable synthesis pathway for nanotechnology and inspiration for further research on nanotechnology.
我们开发了一种创新的纳米颗粒制备技术。它利用高压蒸汽灭菌锅作为反应设备,简化了生物医学纳米颗粒的合成和灭菌过程。成功制备了金纳米颗粒(AuNPs)、银纳米颗粒(AgNPs)和两种类型的水滑石层状纳米颗粒(LDHs)。这些纳米颗粒具有规则的形态和良好的分散性,这与使用传统方法制备的产品特性一致。AuNPs和AgNPs的平均粒径分别为25和38纳米。AuNPs和AgNPs的紫外吸收峰分别在520和436纳米处观察到。用于阴离子和阳离子插层的LDHs的平均粒径分别为82和90纳米。LDHs的元素组成包括Co、Mg、Al、C和O。官能团表征结果表明,这四种纳米颗粒的表面含有丰富的官能团。本研究中使用的高压灭菌方法一步制备出了性能良好的无菌纳米颗粒。它避免了二次灭菌操作导致纳米颗粒物理化学性质变化的相关问题,从而确保了它们在生物医学应用中的可用性。因此,该方法为纳米技术提供了一种可扩展的合成途径,并为纳米技术的进一步研究提供了灵感。