Guangxi Key Laboratory of Electrochemical and Magneto-chemical Functional Materials, College of chemistry and bioengineering, Guilin University of Technology, Guilin, 541006, China.
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, 5625 Renmin Street, Changchun, Jilin, 130022, China.
Small. 2024 Jan;20(3):e2305369. doi: 10.1002/smll.202305369. Epub 2023 Sep 7.
The growing demand for highly active nanozymes in various fields has led to the development of several strategies to enhance their activity. Plasmonic enhancement, a strategy used in heterogenous catalysis, represents a promising strategy to boost the activity of nanozymes. Herein, Pd-Au heteromeric nanoparticles (Pd-Au dimers) with well-defined heterointerfaces have been explored as plasmonic nanozymes. As a model system, the Pd-Au dimers with integrated peroxidase (POD)-like activity and plasmonic activity are used to investigate the effect of plasmons on enhancing the activity of nanozymes under visible light irradiation. Mechanistic studies revealed that the generation of hot electron-hole pairs plays a dominant role in plasmonic effect, and it greatly enhances the decomposition of H O to the reactive oxygen species (ROS) intermediates (•OH, •O and O ), leading to elevated POD-like activity of the Pd-Au dimers. Finally, the Pd-Au dimers are applied in the plasmon-enhanced colorimetric method for the detection of alkaline phosphatase, exhibiting broad linear range and low detection limit. This study not only provides a straightforward approach for regulating nanozyme activity through plasmonic heterostructures but also sheds light on the mechanism of plasmon-enhanced catalysis of nanozymes.
在各个领域对高活性纳米酶的需求不断增长,这促使人们开发了几种策略来提高其活性。等离子体增强是一种用于多相催化的策略,代表了一种提高纳米酶活性的很有前途的策略。在此,我们探索了具有明确异质界面的 Pd-Au 杂化纳米颗粒(Pd-Au 二聚体)作为等离子体纳米酶。作为一个模型系统,我们使用具有集成过氧化物酶(POD)样活性和等离子体活性的 Pd-Au 二聚体来研究等离子体在可见光照射下增强纳米酶活性的作用。机理研究表明,热电子-空穴对的产生在等离子体效应中起主导作用,它大大增强了 H O 向活性氧(ROS)中间体(•OH、•O 和 O )的分解,从而提高了 Pd-Au 二聚体的 POD 样活性。最后,我们将 Pd-Au 二聚体应用于等离子体增强比色法检测碱性磷酸酶,该方法表现出较宽的线性范围和较低的检测限。本研究不仅提供了一种通过等离子体异质结构调节纳米酶活性的简单方法,还揭示了纳米酶等离子体增强催化的机理。
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