催化作用
化学
产量(工程)
基质(水族馆)
电催化剂
电子转移
蛋白质工程
碳纤维
纳米技术
人工酶
材料科学
活动站点
配体(生物化学)
光热治疗
酶催化
亚硝酸盐
表面工程
表面等离子共振
化学工程
化学物理
组合化学
电子顺磁共振
辐照
纳米颗粒
等离子体子
原子单位
酶
氨生产
亚硝酸盐还原酶
金属
作者
Xianhu Long,Zhangnan Yao,Ting Li,Xuexia Guo,L L Zeng,Huinan Zhao,Ping Li,Dong Shu,Chun He
摘要
ABSTRACT Natural enzymatic nitrate (NO 3 ‒ ) conversion exhibits inherent limitations under anthropogenic disturbances. Herein, we proposed an artificial enzyme assembly engineering that integrated a photothermal module with a biomimetic catalytic framework, aiming to transcend the functionality of natural enzyme. The integrated catalyst (Cu x /Cu 1 ‐NC) features coexisting Cu clusters and single atoms anchored on a nitrogen‐doped carbon substrate. In a photo‐electro system, the catalyst exhibited nearly 100% ammonia (NH 3 ) selectivity, with an NH 3 yield increased by 23.1 times compared to the unmodified single‐atom catalyst (Cu 1 ‐C). Mechanistic studies at the atomic and molecular levels reveal that, Cu clusters and Cu single atoms successfully mimic T1Cu and T2Cu in copper‐containing nitrite reductase (Cu‐NIR), supplying electrons and protons during NO 3 ‒ reduction process. Nitrogen‐doped carbon substrate possesses an asymmetric electron distribution function akin to that of amino acid residues in enzymes, constructing an efficient *H transfer network. In situ detection and physical modeling demonstrated that, the plasmonic resonance of Cu clusters generates an electromagnetic field intensity of 44.8 on a log 10 (|E| 2 ) scale at the interatomic gaps and produces an interfacial thermal field of 80.1°C within 1 min under irradiation of 400 mW·cm −2 , thereby promoting reactivity. This work offers a state‐of‐the‐art photothermal‐responsive artificial enzyme assembly strategy for directed NO 3 ‒ conversion.
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