Shameer Mohamed, Vijai Anand Kabali, B M Parambath Javad, Columbus Soumya, Alawadhi Hussain
Center for Advanced Materials Research, Research Institute of Sciences and Engineering, University of Sharjah, PO Box 27272, Sharjah, United Arab Emirates; Department of Physics, Sathyabama Institute of Science & Technology, Chennai 600 119, Tamil Nadu, India.
Department of Physics, Sathyabama Institute of Science & Technology, Chennai 600 119, Tamil Nadu, India.
Spectrochim Acta A Mol Biomol Spectrosc. 2025 Feb 15;327:125412. doi: 10.1016/j.saa.2024.125412. Epub 2024 Nov 8.
As the degree of anisotropy in nanoparticle morphology increases, the resulting electromagnetic enhancement can be significantly intensified. Herein, we have attempted to develop anisotropic gold-silver (a-AuAg) nanoparticles deposited on a titanium sheet (a-AuAg@Ti) as a highly efficient Surface-enhanced Raman Spectroscopy (SERS) sensor for rapid detection of health-hazardous milk adulterants like melamine. Hierarchical a-AuAg nanoparticles have been synthesized via a facile seed and growth-mediated method, followed by immobilization on a titanium sheet using a drop-casting technique. The structural, morphological, chemical, and optical properties of a-AuAg@Ti sensors have been systematically investigated and correlated with their respective SERS performance. Morphological analysis revealed the occurrence of triangular, hexagonal, and pentagonal-shaped nanoparticles with an average particle size of ∼ 23 to 26 nm. Preliminary SERS analysis using Rhodamine 6G (R6G) probe molecule revealed significantly higher SERS activity for a-AuAg nanoparticles compared to their spherical counterparts. This could be attributed to the lightning rod effect associated with the synthesized anisotropic nanostructures. An enhancement factor of 1.7 x 10 has been estimated for a-AuAg@Ti sensor with excellent signal reproducibility. Further, the efficacy of melamine detection has been investigated by spiking it into water and milk samples. The estimated lower detection limit (LDL) near picomolar and nanomolar concentrations have been obtained for melamine-spiked samples in water and milk, respectively. High-performance liquid chromatography analysis for melamine revealed an LDL of only 0.1 µM, indicating the higher sensitivity of a-AuAg@Ti SERS sensor. Moreover, we have also analyzed commercial milk products to verify the melamine contents, but none of them showed melamine-specific fingerprint bands. Our findings highlight the superior sensitivity of a-AuAg@Ti substrates for real-time melamine detection, making them excellent optical sensing tools for food safety analysis.
随着纳米颗粒形态各向异性程度的增加,所产生的电磁增强效应会显著增强。在此,我们尝试制备沉积在钛片上的各向异性金银(a-AuAg)纳米颗粒(a-AuAg@Ti),作为一种高效的表面增强拉曼光谱(SERS)传感器,用于快速检测三聚氰胺等危害健康的牛奶掺假物。通过一种简便的种子和生长介导方法合成了分级结构的a-AuAg纳米颗粒,随后采用滴铸技术将其固定在钛片上。系统研究了a-AuAg@Ti传感器的结构、形态、化学和光学性质,并将其与各自的SERS性能相关联。形态分析显示出现了三角形、六边形和五边形的纳米颗粒,平均粒径约为23至26纳米。使用罗丹明6G(R6G)探针分子进行的初步SERS分析表明,与球形a-AuAg纳米颗粒相比,各向异性a-AuAg纳米颗粒具有显著更高的SERS活性。这可能归因于与合成的各向异性纳米结构相关的避雷针效应。对于具有优异信号重现性的a-AuAg@Ti传感器,估计增强因子为1.7×10。此外,通过将三聚氰胺添加到水和牛奶样品中,研究了其检测效果。对于添加了三聚氰胺的水和牛奶样品,分别在皮摩尔和纳摩尔浓度附近获得了估计的最低检测限(LDL)。对三聚氰胺的高效液相色谱分析显示最低检测限仅为0.1µM,表明a-AuAg@Ti SERS传感器具有更高的灵敏度。此外,我们还分析了市售牛奶产品以验证三聚氰胺含量,但它们均未显示出三聚氰胺特异性指纹带。我们的研究结果突出了a-AuAg@Ti基底在实时检测三聚氰胺方面的卓越灵敏度,使其成为食品安全分析的优异光学传感工具。