三维 Au-MnO2 纳米结构作为基于可见光吸附的组胺检测器的效率

Siti Febtria Asrini Sugito , Mochamad Zakki Fahmi , Miratul Khasanah , Septianti Putri Sophiar , Jia-yaw Chang , Gasidit Panomsuwan
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引用次数: 0

摘要

组胺摄入量高会中毒。因此,测定渔业和加工产品中的组胺含量对食品质量至关重要。几种基于金纳米粒子的比色传感器在检测样品中组胺的存在方面表现出色。用 MnO2 修饰的 AuNPs 可作为试剂,通过紫外可见分光光度法分析组胺。利用种子介导生长法,用柠檬酸盐包覆的 AuNPs 和 KMnO4 合成了修饰的 Au-MnO2 纳米结构。Au-MnO2 纳米结构的合成过程产生了一种黄绿色溶液,通过蒸发生成了粒径为 100 nm 的结晶固体。这些纳米粒子由 AuNPs 和 MnO2 组成,仍然具有其原有的特性。在组胺分光光度法中应用 Au-MnO2 纳米结构,其灵敏度为 0.0344 ppm,检出限为 0.185 ppm,定量限为 0.618 ppm,准确度为 95-101%。根据分析结果,合成的 Au-MnO2 纳米结构与组胺形成络合物的有效性较低,这是由于组胺的咪唑基团与 Au-MnO2 纳米结构之间的结合力较弱。因此,要将 Au-MnO2 用作候选组胺生物传感器,还需要进一步研究金属锰的成分或选择其他金属。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficiency of three dimension Au–MnO2 nanostructure as visible adsorption based detector of histamine sensing

Efficiency of three dimension Au–MnO2 nanostructure as visible adsorption based detector of histamine sensing

High intakes of histamine are poisonous. Hence, determining histamine levels in fisheries and processed products is essential to food quality. Several colorimetric sensors based on gold nanoparticles have shown exemplary performance in detecting the presence of histamine in samples. The modified AuNPs by MnO2 were used as a reagent in histamine analysis by UV–Vis spectrophotometry. Using a seed-mediated growth method, modified Au–MnO2 nanostructures were synthesized from citrate-coated AuNPs and KMnO4. The Au–MnO2 nanostructure synthesis process produced a yellow-green solution, which produced a crystalline solid with a particle size <100 nm by evaporation. These nanoparticles comprise AuNPs and MnO2 components, which still perform their original properties. Application of Au–MnO2 nanostructure in histamine spectrophotometry has values in sensitivity of 0.0344 ppm, detection limit of 0.185 ppm, quantification limit of 0.618 ppm, and accuracy of 95–101 %. Based on analytical results, the effectiveness of synthesizing Au–MnO2 nanostructure to form complexes with histamine content was low, and it was due to the weak binding between the imidazole group of histamine and Au–MnO2 nanostructures. Therefore, further investigation on the composition of the Mn metal or the selection of other metals is needed to use Au–MnO2 as candidate histamine biosensors.

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