活性氧
电子转移
铈
催化作用
化学
根瘤菌
氧气
过氧化氢酶
纳米技术
光化学
生物物理学
材料科学
抗氧化剂
无机化学
生物化学
固氮
有机化学
氮气
生物
作者
Juan Zhang,Zhihua Wang,Xingen Lin,Xiaoping Gao,Qiuping Wang,Rui Huang,Yaner Ruan,Haonan Xu,Lin Tian,Chen Ling,Ran Shi,Suowen Xu,Kong Chen,Yuen Wu
出处
期刊:Angewandte Chemie
[Wiley]
日期:2024-09-27
卷期号:64 (4): e202416686-e202416686
被引量:99
标识
DOI:10.1002/anie.202416686
摘要
Abstract Regulating appropriate valence states of metal active centers, such as Ce 3+ /Ce 4+ and Mn 3+ /Mn 2+ , as well as surface vacancy defects, is crucial for enhancing the catalytic activity of cerium‐based and manganese‐based nanozymes. Drawing inspiration from the efficient substance exchange in rhizobia‐colonized root cells of legumes, we developed a symbiosis nanozyme system with rhizobia‐like CeO x nanoclusters robustly anchored onto root‐like Mn 3 O 4 nanosupports (CeO x /Mn 3 O 4 ). The process of “substance exchange” between Ce and Mn atoms—reminiscent of electron transfer—not only fine‐tunes the metal active sites to achieve optimal Ce 3+ /Ce 4+ and Mn 3+ /Mn 2+ ratios but also enhances the vacancy ratio through interface defect engineering. Additionally, the confinement anchoring of CeO x on Mn 3 O 4 ensures efficient electron transfer in catalytic reactions. The final CeO x /Mn 3 O 4 nanozyme demonstrates potent catalase‐like (CAT‐like) and superoxide dismutase‐like (SOD‐like) activities, excelling in both chemical settings and cellular environments with high reactive oxygen species (ROS) levels. This research not only unveils a novel material adept at effectively eliminating ROS but also presents an innovative approach for amplifying the efficacy of nanozymes.
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