铱
催化作用
电子转移
碳纤维
电子结构
吸附
化学
纳米颗粒
光化学
动力学
碳纳米管
氧气
检出限
纳米技术
电子效应
质子
密度泛函理论
反应性(心理学)
材料科学
过渡金属
化学物理
活动站点
设计要素和原则
工作(物理)
自旋态
电子组态
活性氧
航程(航空)
原子电子跃迁
原位
自旋(空气动力学)
作者
Di Zhang,K. F. Wang,Chenguang Wang,Hui Li,Qiang Bai,Lina Wang,Tianzhi Yu,Dehong Chen,Ning Sui
出处
期刊:Small
[Wiley]
日期:2026-02-06
卷期号:22 (20): e13773-e13773
被引量:2
标识
DOI:10.1002/smll.202513773
摘要
ABSTRACT The kinetics of oxidase‐like (OXD‐like) nanozymes are significantly influenced by the electronic configuration of their active sites. In this study, a nanozyme that features unique electronic interactions was created by in situ construction of iridium nanoparticles on graphdiyne‐coated carbon nanotube (Ir/GDY/CNT). This configuration enables efficient and specific oxygen activation through a spin‐state modulation mechanism. The incorporation of sp‐hybridized carbon (sp‐C) facilitates a transition in the electronic structure of the Ir sites from low‐spin to high‐spin states via electronic metal‐support interactions. This enhances the adsorption strength and electron transfer between the Ir sites and reactants/intermediates, leading to an improved OXD‐like activity. The Ir/GDY/CNT nanozyme demonstrates a 6.2‐fold enhancement in OXD‐like activity compared to pristine iridium nanoparticles, and a 2.5‐fold improvement over Ir/CNT. Capitalizing on this improved catalytic performance, a colorimetric sensor was developed for the detection of organophosphorus pesticides. The sensor exhibits a wide linear range (0.1–1200 ng mL −1 ) and ultralow detection limit (0.03 ng mL −1 ), outperforming previously reported systems. This work establishes a generalizable strategy for developing high‐performance OXD‐like nanozymes through spintronics‐level engineering, which presents significant potential for environmental and diagnostic applications.
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