Analytical Chemistry Department, Faculty of Pharmacy, October 6 University, Central axis street, 6 October City, Egypt.
Analytical Chemistry Department, Faculty of Pharmacy, Cairo University, El-Kasr El-Aini Street, Cairo, ET-11562, Egypt.
Mikrochim Acta. 2021 May 22;188(6):195. doi: 10.1007/s00604-021-04845-7.
Surface-enhanced infrared absorption spectroscopy offers an alternative to conventional IR spectroscopy and utilizes the signal enhancement exerted by the plasmon resonance of nanostructured metal thin films. Citrate-capped silver nanoparticles were prepared in a single-step method, and their morphology was identified using transmission electron microscopy, scanning electron microscopy, ultraviolet/visible spectrophotometry, and Zetasizer. The nanoparticles generated were deposited on the surface of cheap aluminum slides for different durations aiming for the selection of the best time producing a thin film, suitable to act as a lab-on-a-chip SEIRA substrate. These substrates were coupled to partial least squares regression tools for simultaneous resolving of the quinary mixture in commercial dosage forms of bisoprolol, perindopril, bisoprolol acid degradation product, bisoprolol alkali degradation product, and perindoprilat in concentration ranges of 15-75, 60-300, 15-55, 12-60, and 20-80 μg/mL with limits of detection values of 0.69, 3.43, 0.97, 1.25, and 1.09 μg/mL, respectively. Overall, we could demostrate that the localized surface plasmon resonance sensor coupled to chemometrics provides cheap, simple, selective, multiplex, rapid, and molecular specific procedures for impurity detection, which would be beneficial in many applications for quality control and quality accuracy of active pharmaceutical ingredients.
表面增强红外吸收光谱为传统红外光谱提供了一种替代方法,利用了纳米结构金属薄膜的等离子体共振所产生的信号增强。采用一步法制备了柠檬酸封端的银纳米粒子,并通过透射电子显微镜、扫描电子显微镜、紫外/可见分光光度法和 Zetasizer 对其形态进行了鉴定。为了选择产生适合作为芯片上实验室 SEIRA 基底的薄膜的最佳时间,将生成的纳米粒子沉积在廉价的铝片表面上不同的时间段。这些基底与偏最小二乘回归工具相结合,用于同时解析商业剂型中倍他洛尔、培哚普利、倍他洛尔酸降解产物、倍他洛尔碱降解产物和培哚普利拉的五元混合物,浓度范围为 15-75、60-300、15-55、12-60 和 20-80μg/mL,检测限分别为 0.69、3.43、0.97、1.25 和 1.09μg/mL。总的来说,我们可以证明,局部表面等离子体共振传感器与化学计量学相结合,提供了廉价、简单、选择性、多重、快速和分子特异性的杂质检测方法,这将有益于许多质量控制和活性药物成分质量准确性的应用。