Awiaz Gul, Lin Jie, Wu Aiguo
Cixi Institute of Biomedical Engineering, International Cooperation Base of Biomedical Materials Technology and Application, Chinese Academy of Sciences (CAS) Key Laboratory of Magnetic Materials and Devices and Zhejiang Engineering Research Center for Biomedical Materials Ningbo Institute of Materials Technology and Engineering, CAS Ningbo China.
University of Chinese Academy of Sciences Beijing China.
Exploration (Beijing). 2023 Feb 7;3(1):20220072. doi: 10.1002/EXP.20220072. eCollection 2023 Feb.
The methodological advancements in surface-enhanced Raman scattering (SERS) technique with nanoscale materials based on noble metals, Au, Ag, and their bimetallic alloy Au-Ag, has enabled the highly efficient sensing of chemical and biological molecules at very low concentration values. By employing the innovative various type of Au, Ag nanoparticles and especially, high efficiency Au@Ag alloy nanomaterials as substrate in SERS based biosensors have revolutionized the detection of biological components including; proteins, antigens antibodies complex, circulating tumor cells, DNA, and RNA (miRNA), etc. This review is about SERS-based Au/Ag bimetallic biosensors and their Raman enhanced activity by focusing on different factors related to them. The emphasis of this research is to describe the recent developments in this field and conceptual advancements behind them. Furthermore, in this article we apex the understanding of impact by variation in basic features like effects of size, shape varying lengths, thickness of core-shell and their influence of large-scale magnitude and morphology. Moreover, the detailed information about recent biological applications based on these core-shell noble metals, importantly detection of receptor binding domain (RBD) protein of COVID-19 is provided.
基于贵金属金、银及其双金属合金金 - 银的纳米级材料在表面增强拉曼散射(SERS)技术方面的方法学进步,使得在极低浓度值下高效检测化学和生物分子成为可能。通过采用创新的各种类型的金、银纳米颗粒,特别是高效的金@银合金纳米材料作为基于SERS的生物传感器的底物,彻底改变了对包括蛋白质、抗原 - 抗体复合物、循环肿瘤细胞、DNA和RNA(微小RNA)等生物成分的检测。这篇综述围绕基于SERS的金/银双金属生物传感器及其拉曼增强活性展开,重点关注与之相关的不同因素。本研究的重点是描述该领域的最新进展及其背后的概念性进步。此外,在本文中,我们深入探讨了诸如尺寸、形状、不同长度、核壳厚度变化及其对大规模尺寸和形态的影响等基本特征变化所产生的影响。此外,还提供了基于这些核壳贵金属的近期生物应用的详细信息,重要的是对新冠病毒受体结合域(RBD)蛋白的检测。