Dual fluorescence-colorimetric sensing platform based on the peroxidase-mimetic performance of the Fe2AlB2 MAX phase for the quantification of acetamiprid and imidacloprid pesticides

IF 4.1 3区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Photochemistry and Photobiology A-chemistry Pub Date : 2024-08-20 DOI:10.1016/j.jphotochem.2024.115979
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Abstract

The extensive use of pesticides in modern agriculture has raised concerns about environmental contamination and adverse human health effects. Therefore, developing highly sensitive detection methods to identify pesticide residues is crucial for food safety and ecosystem protection. In this study, the Fe2AlB2 MAX phase was synthesized and characterized. After evaluating its peroxidase-mimetic performance using a colorimetric method, a new, sensitive, and simple dual fluorescence-colorimetric sensor was developed for the quantification of two common pesticides, acetamiprid (ACP) and imidacloprid (IMP), using fluorescein (FL). The developed method is based on the inhibitory impact of ACP and IMP on the enzymatic performance of the Fe2AlB2 MAX phase, specifically the inhibition of hydroxyl radical (OH) generation, which enhances the absorption and emission intensities of FL. The results confirmed that OH generated through the breakdown of H2O2 via the catalytic activity of the MAX phase can decrease the intrinsic absorption and emission intensities of FL. However, ACP and IMP inhibit the peroxidase-like activity of the MAX phase, leading to increased absorption and emission intensities of FL. The limit of detection values calculated for spectrophotometric and spectrofluorimetric quantifications were 2.8 μM and 0.051 μM for ACP and 1.72 μM and 0.013 μM for IMP, respectively. Furthermore, the proposed method was successfully utilized to accurately and reliably determine ACP and IMP in spiked real samples with satisfactory accuracy and precision. These developed methods offer several advantages, making them promising candidates for the direct, rapid screening of pesticide residues.

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基于 Fe2AlB2 MAX 相过氧化物酶模拟性能的双荧光比色传感平台,用于定量分析啶虫脒和吡虫啉农药
农药在现代农业中的广泛使用引发了人们对环境污染和人类健康不良影响的担忧。因此,开发高灵敏度的检测方法来识别农药残留对于食品安全和生态系统保护至关重要。本研究合成了 Fe2AlB2 MAX 相,并对其进行了表征。在使用比色法评估了其过氧化物酶模拟性能后,开发了一种新型、灵敏、简单的双荧光比色传感器,使用荧光素(FL)定量检测两种常见农药啶虫脒(ACP)和吡虫啉(IMP)。所开发的方法基于 ACP 和 IMP 对 Fe2AlB2 MAX 相酶性能的抑制作用,特别是对羟基自由基(OH)生成的抑制作用,从而增强了 FL 的吸收和发射强度。结果证实,通过 MAX 相的催化活性分解 H2O2 产生的羟自由基会降低 FL 的本征吸收和发射强度。然而,ACP 和 IMP 会抑制 MAX 相的过氧化物酶样活性,从而导致 FL 的吸收和发射强度增加。计算得出的分光光度法和分光荧光法定量检测限值分别为:ACP 为 2.8 μM 和 0.051 μM;IMP 为 1.72 μM 和 0.013 μM。此外,所提出的方法还成功地用于准确、可靠地测定了加标真实样品中的 ACP 和 IMP,准确度和精密度均令人满意。这些方法具有多种优点,有望用于农药残留的直接、快速筛查。
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来源期刊
CiteScore
7.90
自引率
7.00%
发文量
580
审稿时长
48 days
期刊介绍: JPPA publishes the results of fundamental studies on all aspects of chemical phenomena induced by interactions between light and molecules/matter of all kinds. All systems capable of being described at the molecular or integrated multimolecular level are appropriate for the journal. This includes all molecular chemical species as well as biomolecular, supramolecular, polymer and other macromolecular systems, as well as solid state photochemistry. In addition, the journal publishes studies of semiconductor and other photoactive organic and inorganic materials, photocatalysis (organic, inorganic, supramolecular and superconductor). The scope includes condensed and gas phase photochemistry, as well as synchrotron radiation chemistry. A broad range of processes and techniques in photochemistry are covered such as light induced energy, electron and proton transfer; nonlinear photochemical behavior; mechanistic investigation of photochemical reactions and identification of the products of photochemical reactions; quantum yield determinations and measurements of rate constants for primary and secondary photochemical processes; steady-state and time-resolved emission, ultrafast spectroscopic methods, single molecule spectroscopy, time resolved X-ray diffraction, luminescence microscopy, and scattering spectroscopy applied to photochemistry. Papers in emerging and applied areas such as luminescent sensors, electroluminescence, solar energy conversion, atmospheric photochemistry, environmental remediation, and related photocatalytic chemistry are also welcome.
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