氧化还原
电子转移
材料科学
石墨烯
羟基化
纳米技术
催化作用
降级(电信)
控制重构
黄素组
组合化学
化学
生物传感器
生物分子
人工光合作用
原子轨道
酶催化
费米能级
劈开
纳米电子学
分解水
电子传输链
电催化剂
光化学
作者
Xiaodi Niu,Kailong Yang,Leixiao Cui,Ning Huo,Song Wang,Hongsu Wang
摘要
ABSTRACT Flavin‐dependent monooxygenases (FMOs) catalyze redox reactions central to antibiotic degradation and metabolic detoxification, yet replicating their intricate cofactor‐dependent electron transfer in synthetic systems has remained elusive. Here, we report an electronic modulation strategy that enables cofactor‐free FMO‐like catalysis within a high‐entropy alloy nanozyme (HEAzyme‐Cu 1.5 ). We induce localized electron cloud enrichment that shifts Cu 3 d orbitals toward the Fermi level, establishing a self‐sustained redox channel without flavin cofactors. This atomic‐scale entropy‐driven alignment bridges the functional gap between natural cofactor‐dependent enzymes and artificial catalysts, demonstrating for the first time that complex redox cascades traditionally confined to biological systems can be reconstructed purely by materials design. This entropy‐driven electronic reconfiguration enables near‐zero barrier O 2 activation and rapid hydroxylation with a kinetic constant. Integrating this multifunctional HEAzyme into a portable hydrogel sensor platform achieves real‐time antibiotic detection down to 11–25 nM and > 90% degradation within 20 min in complex water samples. This work establishes a universal design principle for programmable enzyme mimetics, where atomic‐scale entropy, electronic‐state alignment, and multimetal cooperation converge to emulate and transcend biological catalysis. Such entropy‐encoded redox systems offer a transformative route toward intelligent bioinspired materials for environmental remediation, green synthesis, and metabolic engineering.
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