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A physical approach for the estimation of the SERS enhancement factor through the enrichment and separation of target molecules using magnetic adsorbents

机译:通过使用磁性吸附剂富集和分离靶分子的菌株估计SERs增强因子的物理方法

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摘要

The controllable synthesis of nanosized Fe _(3) O _(4) (10–20 nm) encapsulated in different numbers of graphene layers (1–5 layers) (Fe _(3) O _(4) @DGL NPs) was realized through a facile and green hydrothermal reaction at a temperature as low as 200 °C. The competitive reduction–oxidation between reducing ethylene glycol (EG) and oxidizing H _(2) O under hydrothermal conditions resulted in the emergence of a magnetic Fe _(3) O _(4) core. Then, the pyrolytic reaction of the polyvinyl alcohol (PVA) molecules attached to the surface of the Fe _(3) O _(4) core with different surface densities led to the formation of graphene with a controlled number of layers. These Fe _(3) O _(4) @DGL NPs exhibited fast adsorption and sensitive SERS detection for rhodamine B (RhB). A physical and mathematical model was proposed for the estimation of the enhancement factor (EF) by combining the adsorption efficiency and SERS of RhB. This approach and model are applicable for the adsorption, sensitive SERS detection and determination of SERS EF when using functional magnetic nanoparticles as the adsorbent. The Fe _(3) O _(4) @1G NPs were also used as a novel nano-adsorbent for the fast removal of Escherichia coli ( E. coli ) from an aqueous solution. The Fe _(3) O _(4) @1G NPs regenerated after 3 cycles also showed high efficiency in the adsorption and separation of RhB and E. coli .
机译:在不同数量的石墨烯层(1-5层)(Fe _(3)O _(4)o _(4)@dgl nps)中包封的纳米Fe _(3)O _(4)(10-20nm)的可控合成是通过温度和绿色水热反应在低至200℃的温度下实现。在水热条件下还原乙二醇(例如)和氧化H _(2)o之间的竞争还原氧化导致磁性Fe _(3)O _(4)核的出现导致出现。然后,具有不同表面密度的聚乙烯醇(PVA)分子与Fe _(3)O _(4)℃的表面的热解反应导致具有受控数量的石墨烯。这些Fe _(3)O _(4)@dgl NPS表现出快速吸附和敏感的SERs检测Rhodamine B(RHB)。通过组合RHB的吸附效率和SERS来估计增强因子(EF)来估计物理和数学模型。这种方法和模型适用于使用功能磁性纳米颗粒作为吸附剂时的吸附,敏感的SERs检测和测定SERS EF。 Fe _(3)O _(4)×(4)×1GNPS也用作新的纳米吸附剂,用于从水溶液中快速去除大肠杆菌(大肠杆菌)。在3个循环后再生的Fe _(3)O _(4)@ 1g NPS也表现出高效率的RHB和大肠杆菌的吸附和分离。

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