SiO2@Ag

SiO2 @ Ag
  • 文章类型: Journal Article
    使用二氧化硅(SiO2)@Ag纳米颗粒(NPs)的表面增强拉曼光谱(SERS)标记易于处理,并且正在各个领域进行研究,包括SERS成像和免疫测定。这主要是由于其结构优势,具有高SERS活性。然而,在各种条件下,由于奥斯特瓦尔德熟化现象,引入SiO2表面的AgNP可能会发生结构转变。因此,SERS信号的一致性降低,降低了它们作为SERS基板的可用性。直到最近,已积极进行研究以提高单个AgNPs的稳定性。然而,关于SiO2@AgNPs用作SERS标记材料的研究仍然缺乏。在这项研究中,我们利用拉曼标记化合物(RLC)来防止SiO2@AgNPs在各种条件下的结构变形,并提出了出色的SiO2@Ag@RLC-PreNPs作为SERS标记材料。使用各种RLCs,我们证实,4-巯基苯甲酸(4-MBA)是保持2个月最高稳定性的RLC。这些结果也观察到SiO2@AgNPs,在各种pH和温度条件下不稳定。我们相信使用SiO2@AgNP和4-MBA的SERS标签可以用于基于SERS的各种应用中,因为所得SERS信号的高稳定性和一致性。
    Surface-enhanced Raman spectroscopy (SERS) tagging using silica(SiO2)@Ag nanoparticles (NPs) is easy to handle and is being studied in various fields, including SERS imaging and immunoassays. This is primarily due to its structural advantages, characterized by high SERS activity. However, the Ag NPs introduced onto the SiO2 surface may undergo structural transformation owing to the Ostwald ripening phenomenon under various conditions. As a result, the consistency of the SERS signal decreases, reducing their usability as SERS substrates. Until recently, research has been actively conducted to improve the stability of single Ag NPs. However, research on SiO2@Ag NPs used as a SERS-tagging material is still lacking. In this study, we utilized a Raman labeling compound (RLC) to prevent the structural deformation of SiO2@Ag NPs under various conditions and proposed excellent SiO2@Ag@RLC-Pre NPs as a SERS-tagging material. Using various RLCs, we confirmed that 4-mercaptobenzoic acid (4-MBA) is the RLC that maintains the highest stability for 2 months. These results were also observed for the SiO2@Ag NPs, which were unstable under various pH and temperature conditions. We believe that SERS tags using SiO2@Ag NPs and 4-MBA can be utilized in various applications on based SERS because of the high stability and consistency of the resulting SERS signal.
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  • 文章类型: Journal Article
    SiO2@Ag nanocomposite (NC) has been synthesized by the chemical reduction and Stӧber method for Metal-enhanced fluorescence (MEF) of Rhodmine 6G (R6G) and Surface-enhanced Raman spectroscopy (SERS) of Malachite green (MG). As-synthesized SiO2@Ag NC indicated SiO2 nanosphere (NS) and Ag nanoparticle (NP) morphologies. The SiO2@Ag NC was high quality with a well-defined crystallite phase with average sizes of 24 nm and 132 nm for Ag NP and SiO2 NC, respectively. By using SiO2@Ag NC, the photoluminescence (PL) intensity of the R6G (at 59.17 ppm) was increased approximately 133 times. The SERS of the MG (at 1.0 ppm) with SiO2@Ag NC as substrate clearly observed vibrational modes in MG dye at 798, 916, 1172, 1394, and 1616 cm-1. As a result, the SERS enhancement factor (EFSERS) at 1172 cm-1 obtained 6.3 × 106. This initial study points to the potential of SiO2@Ag NC as a promising material for MEF and SERS substrates to detect dyes at low concentrations.
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  • 文章类型: Journal Article
    该研究的目的是检查生物活性和抗菌纳米颗粒对实验粘合剂的适用性。粘合剂(60重量%BisGMA,15wt%TEGDMA,25wt%的HEMA)与5wt%的甲基丙烯酰基官能化的多面体低聚倍半硅氧烷(MA-POSS)和一种生物活性/抗菌纳米颗粒的组合混合:1wt%的核-壳二氧化硅-银纳米颗粒(SiO2@Ag),1重量%的生物活性玻璃与铋(BAG-Bi)或1重量%的磷酸钙(CAP)。纯粘合剂用作对照。物理化学(转化度(DC),线性收缩(LS),剪切和复数粘度,吸水率(WS),溶胶分数(SF)),生物(抗菌作用)和生物活性(矿物质沉淀)特性进行了研究。DC和LS保持不变。与对照相比,BAG-Bi/MA-POSS的组合导致显著增加的WS和SF。此外,CAP/MA-POSS的组合略微增加了粘合剂的剪切粘度。与纯粘合剂相比,纳米颗粒的添加不影响抗微生物效果。在所有纳米颗粒组合中都可以检测到改善的矿物质诱导能力。生物活性和/或抗菌纳米颗粒的组合显示出改善的矿物质诱导能力,但没有抗菌性能。材料性能没有受到影响或仅受到轻微影响。
    The aim of the study was to examine the applicability of bioactive and antibacterial nanoparticles to an experimental adhesive. The adhesive (60 wt% BisGMA, 15 wt% TEGDMA, 25 wt% HEMA) was mixed with combinations of 5 wt% methacryl-functionalized polyhedral oligomeric silsesquioxane (MA-POSS) and one kind of bioactive/antibacterial nanoparticles: 1 wt% core-shell silica-silver nanoparticle (SiO2@Ag), 1 wt% bioactive glass with bismuth (BAG-Bi) or 1 wt% calcium phosphate (CAP). Pure adhesive served as control. The physicochemical (degree of conversion (DC), linear shrinkage (LS), shear and complex viscosity, water sorption (WS), sol fraction (SF)), biological (antimicrobial effect) and bioactive (mineral precipitation) properties were investigated. DC and LS remained unchanged. The combination of BAG-Bi/MA-POSS resulted in a significantly increased WS and SF compared to control. In addition, the combination of CAP/MA-POSS slightly increased the shear viscosity of the adhesive. The addition of the nanoparticles did not influence the antimicrobial effects compared to the pure adhesive. Improved mineral inducing capacity could be detected in all nanoparticle combinations. The combination of bioactive and/or antibacterial nanoparticles showed improved mineral inducing capacity, but no antibacterial properties. The material properties were not or only slightly affected.
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