College of Chemistry, Chemical Engineering and Material Science, Key Lab of Health Chemistry and Molecular Diagnosis of Suzhou, Soochow University, Suzhou, Jiangsu 215123, People's Republic of China.
ACS Appl Mater Interfaces. 2013 Apr 10;5(7):2392-9. doi: 10.1021/am4004254. Epub 2013 Mar 21.
A facile and effective approach for the improvement of localized surface plasmon resonance (LSPR) biosensors based on silver-core and gold-shell nanoparticles (Ag@AuNPs) on a glass substrate was investigated. Silver nanoparticles (core) with thin gold shells on a transparent indium tin oxide (ITO) coated glass surface were prepared by sequential electrodeposition, and the influence of the thickness of the gold shell was systematically investigated. The experimental results indicate that the properties of an LSPR band of ultrathin (∼1.3 nm) gold-shell coated silver nanoparticles are very similar to those of silver nanoparticles alone. The refractive index (RI) sensitivities of the metal nanostructures are calculated as 123 and 220 nm/RIU for the silver cores (∼480 nm of LSPR peak) and Ag@AuNPs (∼503 nm of LSPR peak), respectively, on the ITO substrate. The RI sensitivity of Ag@AuNPs was significantly enhanced by coating the silver nanoparticles with an ultrathin gold shell. This core-shell platform was also applied to the fabrication of biosensors. Thus, this strategy can be used to construct inexpensive, stable, versatile, and sensitive LSPR biosensors.
研究了一种在玻璃基底上基于银核和金壳纳米粒子(Ag@AuNPs)的局域表面等离子体共振(LSPR)生物传感器的改进的简便有效方法。通过顺序电沉积制备了在透明铟锡氧化物(ITO)涂覆的玻璃表面上具有薄金壳的银纳米粒子(核),并系统研究了金壳厚度的影响。实验结果表明,超薄(约 1.3nm)金壳涂覆的银纳米粒子的 LSPR 带的性质与单独的银纳米粒子非常相似。金属纳米结构的折射率(RI)灵敏度分别计算为银核(LSPR 峰约为 480nm)和 Ag@AuNPs(LSPR 峰约为 503nm)在 ITO 基底上的 123 和 220nm/RIU。通过在银纳米粒子上涂覆超薄金壳,Ag@AuNPs 的 RI 灵敏度得到显著提高。该核壳平台还应用于生物传感器的制造。因此,这种策略可用于构建廉价、稳定、通用和灵敏的 LSPR 生物传感器。