催化作用
材料科学
纳米技术
氢键
基质(水族馆)
过氧化氢
氧化物
纳米结构
氢
化学物理
多相催化
纳米尺度
酶催化
组合化学
解吸
表面改性
化学
超分子化学
工作(物理)
分子动力学
化学工程
纳米颗粒
化学键
降级(电信)
金属有机骨架
作者
Xiao-Xuan Shu,Ting-Ting Zhu,Ying Liu,Sheng-Song Yu,Jie-Jie Chen,Han-Qing Yu,Yan Yu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-01-31
卷期号:20 (5): 4217-4227
被引量:2
标识
DOI:10.1021/acsnano.5c16726
摘要
Dynamic hydrogen bond networks are integral to enzymatic catalysis, enabling efficient substrate polarization, intermediate stabilization, and rapid active-site turnover. However, translating such adaptive features into synthetic systems at the nanoscale presents a significant challenge. Here, we report a rationally designed Fe–containing metal–organic framework (MOF), 2,5OH-MIL-101(Fe), derived from MIL-101(Fe), that mimics enzyme-like hydrogen-bond dynamics for efficient hydrogen peroxide (H 2 O 2 ) activation. By site-specific hydroxyl functionalization of terephthalate linkers, 2,5OH-MIL-101(Fe) forms a confined hydrogen-bond network around FeO 6 centers that stabilizes H 2 O 2 -derived intermediates through O–H···O interactions and promotes O–O bond activation. This network subsequently polarizes electrons through directional hydrogen bond interactions and ultimately facilitates H 2 O desorption via reversible bond switching. These nanostructured interactions continuously regenerate Fe active sites, leading to a 94.1-fold enhancement in peroxidase-like activity compared to conventional ferroferric oxide nanoparticles. The catalyst demonstrates robust, selective, and sensitive H 2 O 2 activation within a physiologically relevant concentration range (10–1000 μM). This work demonstrates hydrogen bond network engineering in MOFs as a promising approach for creating adaptive catalysts that combine the precision of enzymes with the stability of nanomaterials, advancing bioinspired heterogeneous catalysis.
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