The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.
The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.
J Colloid Interface Sci. 2022 Nov;625:340-353. doi: 10.1016/j.jcis.2022.06.013. Epub 2022 Jun 7.
In this paper, a novel Au@AuAg yolk-shell heterogeneous nanostructure is designed as plasmonic spectroscopic sensor based on surface etching for ultrasensitive detection of trace cobalt ions (Co). Due to the surface diffusion of gold atoms, the Ag at one end of the core gold nanobipyramids (Au NBPs) is retained, and Au@AuAg yolk-shell nanostructure with asymmetric core is prepared. The alloy shell is coupled to Au NBPs and the interface of asymmetric Ag respectively, the two local surface plasmon resonance bands will have obvious reverse changes depending on the surface morphology of the shell. By using this distinct plasmon response generated by Co induced surface etching, which is driven by discrepancy of double-peaks, a sensing method has been established to realize multi-information spectral detection of Co. There is a good linear relationship between the intensity ratio and the Co concentration in the range of 1-100 nM, in which the limit of detection is 0.2 nM. This method further improves the sensing capability by combining multiple pieces of strongly changing spectral information, and demonstrates great advantages and potential of Au@AuAg yolk-shell heterogeneous nanostructure as a multi-information plasmonic sensor based on etched shell surface for trace detection.
本文设计了一种新颖的 Au@AuAg 核壳异质纳米结构,作为基于表面刻蚀的等离子体光谱传感器,用于痕量钴离子 (Co) 的超灵敏检测。由于金原子的表面扩散,保留了核金纳米双锥 (Au NBPs) 一端的 Ag,制备了具有不对称核的 Au@AuAg 核壳纳米结构。合金壳分别与 Au NBPs 和不对称 Ag 的界面耦合,两个局域表面等离子体共振带将根据壳层的表面形态发生明显的反向变化。通过利用 Co 诱导的表面刻蚀产生的这种独特的等离子体响应,由双峰差异驱动,建立了一种传感方法,以实现 Co 的多信息光谱检测。在 1-100 nM 的范围内,强度比与 Co 浓度之间存在良好的线性关系,检测限为 0.2 nM。该方法通过结合多个强烈变化的光谱信息进一步提高了传感性能,证明了 Au@AuAg 核壳异质纳米结构作为基于刻蚀表面的多信息等离子体传感器在痕量检测中的优势和潜力。