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基于纳米酶反应器的氧化诱导反应用于食品防腐剂的定量 SERS 分析。

Nanoenzyme Reactor-Based Oxidation-Induced Reaction for Quantitative SERS Analysis of Food Antiseptics.

机构信息

College of Ocean Food and Biological Engineering, Jimei University, Xiamen 361021, China.

Institute of Analytical Technology and Smart Instruments and College of Environment and Public Health, Xiamen Huaxia University, Xiamen 361024, China.

出版信息

Biosensors (Basel). 2022 Nov 8;12(11):988. doi: 10.3390/bios12110988.

Abstract

Nanoenzyme reactors based on shell-isolated colloidal plasmonic nanomaterials are well-established and widely applied in catalysis and surface-enhanced Raman scattering (SERS) sensing. In this study, a "double wing with one body" strategy was developed to establish a reduced food antiseptic sensing method using shell-isolated colloidal plasmonic nanomaterials. Gold nano particles (Au NPs) were used to synthesize the colloidal plasmonic nanomaterials, which was achieved by attaching ferrous ions (Fe), ferric ions (Fe), nitroso (NO) group, cyanogen (CN) group, and dopamine (DA) via coordinative interactions. The oxidation-induced reaction was utilized to generate •OH following the Fe-mediated Fenton reaction with the shell-isolated colloidal plasmonic nanomaterials. The •OH generated in the cascade reactor had a high oxidative capacity toward acid preservatives. Importantly, with the introduction of the signal molecule DA, the cascade reactor exhibited also induced a Raman signal change by reaction with the oxidation product (malondialdehyde) which improved the sensitivity of the analysis. In addition, the stable shell-isolated structure was effective in realizing a reproducible and quantitative SERS analysis method, which overcomes previous limitations and could extend the use of nanoenzymes to various complex sensing applications.

摘要

基于壳层分离胶体等离子体纳米材料的纳米酶反应器在催化和表面增强拉曼散射(SERS)传感中得到了广泛的应用。本研究采用“双翼一体”策略,利用壳层分离胶体等离子体纳米材料建立了一种用于食品防腐剂检测的新方法。采用金纳米粒子(Au NPs)合成胶体等离子体纳米材料,通过配位作用将亚铁离子(Fe 2+ )、铁离子(Fe 3+ )、亚硝基(NO)基团、氰基(CN)基团和多巴胺(DA)结合到纳米材料上。氧化诱导反应利用壳层分离胶体等离子体纳米材料介导的芬顿反应产生•OH。在级联反应中产生的•OH 对酸性防腐剂具有很强的氧化能力。重要的是,引入信号分子 DA 后,级联反应与氧化产物(丙二醛)反应会诱导拉曼信号变化,从而提高分析的灵敏度。此外,稳定的壳层分离结构可有效实现重现性和定量的 SERS 分析方法,克服了以往的局限性,并可将纳米酶的应用扩展到各种复杂的传感应用中。

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