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Ag/Au Nanoparticle-Loaded Paper-Based Versatile Surface-EnhancedRaman Spectroscopy Substrates for Multiple Explosives Detection

机译:Ag / Au纳米颗粒纸基多功能表面增强材料拉曼光谱底物用于多种炸药检测

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摘要

We present a systematic study on the fabrication, characterization of versatile, and low-cost filter paper-based surface-enhanced Raman spectroscopy (SERS) substrates loaded with salt-induced aggregated Ag/Au nanoparticles (NPs). These were demonstrated as efficient SERS substrates for the detection of multiple explosive molecules such as picric acid (5 μM), 2,4-dinitrotoluene (1 μM), and 3-nitro-1,2,4-triazol-5-one (10 μM) along with a common dye molecule (methylene blue, 5 nM). The concentrations of the dye and explosive molecules in terms of mass represent 31.98 pg, 11.45 ng, 1.82 ng, and 13.06 ng, respectively. Silver (Ag) and gold (Au) colloidal NPs were prepared by femtosecond laser (∼50 fs, 800 nm, 1 kHz) ablation of Ag/Au-target immersed in distilled water. Subsequently, the aggregated nanoparticles were achieved by mixing the pure Ag and Au NPs with different concentrations of NaCl. These aggregated NPs were characterized by UV–visible absorption and high-resolution transmission electron microscopy techniques. The SERS substrates wereprepared by soaking the filter paper in aggregated NPs. The morphologiesof the paper substrates were investigated using field-emission scanningelectron microscopy technique. We have achieved superior enhancementswith high reproducibility and sensitivity for filter paper substratesloaded with Ag/Au NPs mixed for an optimum concentration of 50 mMNaCl.
机译:我们目前对负载有盐诱导的聚集Ag / Au纳米颗粒(NPs)的多功能,低成本,基于滤纸的表面增强拉曼光谱(SERS)基底的制造,表征进行系统研究。这些被证明是有效的SERS底物,可用于检测多种爆炸性分子,例如苦味酸(5μM),2,4-二硝基甲苯(1μM)和3-硝基-1,2,4-三唑-5-酮( 10μM)和常见的染料分子(亚甲基蓝,5 nM)。染料和爆炸性分子的质量浓度分别代表31.98 pg,11.45 ng,1.82 ng和13.06 ng。银(Ag)和金(Au)胶体NPs是通过飞秒激光(〜50 fs,800 nm,1 kHz)烧蚀浸泡在蒸馏水中的Ag / Au标靶制备的。随后,通过将纯银和金纳米颗粒与不同浓度的氯化钠混合而获得聚集的纳米颗粒。这些聚集的纳米颗粒通过紫外可见吸收和高分辨率透射电子显微镜技术表征。 SERS底物是通过将滤纸浸入聚集的NP中制备。形态场发射扫描研究了纸基材的种类电子显微镜技术。我们取得了卓越的增强对滤纸基材具有很高的重现性和灵敏度混合有Ag / Au NP的最佳浓度为50 mM氯化钠

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