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Spherical silver nanoparticles as substrates in surface-enhanced Raman spectroscopy for enhanced characterization of ketoconazole

机译:球形银纳米颗粒作为表面增强拉曼光谱中的底物,用于增强酮康唑的表征

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A new method was developed for the characterization and detection of ketoconazole using surface enhanced Raman spectroscopy (SERS) by designing substrates and performing the bands' assignments. Thus, spherical silver nanoparticles (Ag-NPs) were synthesized by a reduction method and designed as substrates for SERS application. The Ag-NPs were characterized using a scanning electron microscope, Fourier transformed infrared spectroscopy and a high-resolution transmission electron microscope. TEM results indicated that the average size of the Ag-NPs was 15 nm. The UV spectrum showed a maximum absorbance of Ag-NPs at about 400 nm. When Ag-NPs were used as substrates in SERS, the Raman spectra of KCZ showed a significant enhancement of the Raman bands. An important finding is a linear relationship between the logarithmical scale of KCZ concentration and the intensity of the SERS bands, for example at 1050 cm~(-1) of KCZ, which is due to the C-N vibration. This was optimized and utilized to develop a calibration curve, which was then used for the detection of the KCZ in real pharmaceutical samples. The method has the advantages of a wide dynamic range with a high coefficient of determination and detection limit calculated based on the signal-to-noise ratio of 3, was 2.6 × 10~(-10) M and the limit of quantification was 7.8 × 10~(-10) M.The potential applications that take advantage of the high SERS sensitivity of this method are discussed for practical KCZ analysis where were quantified with this method.
机译:通过设计底物并进行谱带分配,开发了一种使用表面增强拉曼光谱(SERS)表征和检测酮康唑的新方法。因此,通过还原法合成了球形银纳米粒子(Ag-NPs),并设计为SERS应用的底物。使用扫描电子显微镜,傅立叶变换红外光谱和高分辨率透射电子显微镜对Ag-NP进行表征。 TEM结果表明,Ag-NP的平均尺寸为15nm。紫外光谱在约400 nm处显示出最大的Ag-NP吸光度。当将Ag-NPs用作SERS的底物时,KCZ的拉曼光谱显示拉曼谱带显着增强。一个重要的发现是KCZ浓度的对数刻度与SERS谱带强度之间的线性关系,例如在1050 cm〜(-1)的KCZ处,这是由于C-N振动引起的。对此进行了优化,并用于建立校准曲线,然后将其用于检测实际药物样品中的KCZ。该方法具有动态范围宽,测定系数高和基于3的信噪比计算出的检测限为2.6×10〜(-10)M和定量限为7.8×的优点。 10〜(-10)M.讨论了利用该方法的高SERS灵敏度进行潜在的应用,以进行实际的KCZ分析,并对该方法进行了量化。

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