Yu Menghan, Liu Yunyang, Liao Tianqi, Yang Huaming
Engineering Research Center of Nano-Geomaterials of Ministry of Education, China University of Geosciences, Wuhan 430074, China.
Laboratory of Advanced Mineral Materials, China University of Geosciences, Wuhan 430074, China.
Nano Lett. 2025 Feb 5;25(5):2009-2016. doi: 10.1021/acs.nanolett.4c05691. Epub 2025 Jan 28.
The crystalline phase of metal oxides is a key determinant of the properties and functions of the nanomaterials. Traditional approaches have focused on replicating bulk-phase structures, with limited exploration of phase diversity due to challenges in controlling the crystal morphology. Here, we introduce a nanoclay-mediated strategy for crystal-phase engineering, using talc to modulate the morphology and phase of manganese oxide (MnOx) nanoparticles. This approach enhances the oxidase activity of the MnOx composite (M/T), optimizing the antimicrobial efficacy while minimizing cytotoxicity. M/T-190 demonstrated 99% bactericidal activity against and , coupled with 84% cytocompatibility. Theory calculations suggest that talc modulates the charge distribution and d-band center tuning at the MnO/MnOOH interface, enhancing oxygen activation. When integrated into gauze, M/T exhibits strong antimicrobial activity, low toxicity, and promotes wound healing in both in vitro and in vivo studies. These findings highlight the potential of natural minerals for crystal-phase engineering in biomedical applications.
金属氧化物的晶相是纳米材料性质和功能的关键决定因素。传统方法侧重于复制体相结构,由于控制晶体形态存在挑战,对相多样性的探索有限。在此,我们引入一种纳米粘土介导的晶相工程策略,利用滑石粉调节氧化锰(MnOx)纳米颗粒的形态和相。这种方法增强了MnOx复合材料(M/T)的氧化酶活性,优化了抗菌效果,同时将细胞毒性降至最低。M/T-190对[具体细菌名称1]和[具体细菌名称2]表现出99%的杀菌活性,同时具有84%的细胞相容性。理论计算表明,滑石粉调节了MnO/MnOOH界面处的电荷分布和d带中心调谐,增强了氧活化。当整合到纱布中时,M/T在体外和体内研究中均表现出强大的抗菌活性、低毒性,并促进伤口愈合。这些发现突出了天然矿物在生物医学应用中进行晶相工程的潜力。