抗真菌
限制
纳米晶
催化作用
材料科学
Crystal(编程语言)
耐久性
纳米技术
酶
灰葡萄孢菌
晶体结构
电子转移
功能(生物学)
活性氧
化学
化学工程
氧化还原
氧气
水分
组合化学
氧化应激
电子传输链
催化效率
单晶
过渡金属
复合数
螯合作用
作者
Lu Liu,Hongsu Wang,Qianliao Zhou,Biao Dong,Xiaodi Niu
标识
DOI:10.1038/s41467-025-67095-8
摘要
Nanozymes that emulate the catalytic function of natural enzymes often suffer from self-depletion, limiting their long-term efficacy for practical applications. Here, we report an antifungal nanozyme composed of copper-iron nanocrystals (CuFe NCs) engineered through a Twinned Nanozyme Protection Strategy (TNPS). Leveraging the continuous electron-donating role of Cu2+ ions, these CuFe NCs sustain enzymatic activity for over a year, achieving prolonged antifungal effects. Computational chemistry analyses reveal that in the Cu-Fe twinned crystal nanozyme system, the asymmetric four-coordination of Fe atoms shifts the Fe 3 d orbital closer to the Fermi level, facilitating electron transfer from Cu to Fe via oxygen atoms. This mechanism enhances the nanozyme’s catalytic activity, ensuring lasting antifungal efficacy. Remarkably, CuFe NCs demonstrate potent antifungal activity by generating endogenous H2O2 under oxidative stress within the fungus. Additionally, a multifunctional film (CuFe NCs/sodium alginate/gelatin (Cu-Fe/SL)) is developed, combining water retention with antifungal properties, providing over 19 days of protection for perishable foods and maintaining moisture for more than a week. This antifungal film reduces production costs by 80% compared to conventional antimicrobial films. The durable activity of CuFe NCs offers a promising approach to advancing post-harvest food preservation strategies. Nanozymes often suffer from self-depletion, limiting their long-term efficacy for practical applications. Here, the authors report Cu-Fe twincrystal nanozymes that leverage the continuous electron-donating role of Cu2+ ions to achieve sustain enzymatic activity and prolonged antifungal effects.
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