Abel Biebele, Coskun Sahin, Mohammed Muzaffer, Williams Richard, Unalan Husnu Emrah, Aslan Kadir
Department of Chemistry, Morgan State University , 1700 East Cold Spring Lane, Baltimore, Maryland 21251, United States.
Department of Metallurgical and Materials Engineering, Middle East Technical University , Ankara 06800, Turkey.
J Phys Chem C Nanomater Interfaces. 2015 Jan 8;119(1):675-684. doi: 10.1021/jp509040f. Epub 2014 Dec 10.
High enhancement of fluorescence emission, improved fluorophore photostability, and significant reduction of fluorescence lifetimes have been obtained from high aspect ratio (>100) silver (Ag) nanowires. These quantities are found to depend on the surface loading of Ag nanowires on glass slides, where the enhancement of fluorescence emission increases with the density of nanowires. The surface loading dependence was attributed to the creation of intense electric fields around the network of Ag nanowires and to the coupling of fluorophore excited states that takes place efficiently at a distance of 10 nm from the surface of nanowires, which was confirmed by theoretical calculations. The enhancement of fluorescence emission of fluorescein isothiocyanate (FITC) was assessed by fluorescence spectroscopy and fluorescence-lifetime imaging microscopy (FLIM) to demonstrate the potential of high aspect ratio Ag nanowires. Fluorescence enhancement factors exceeding 14 were observed on Ag nanowires with high loading by FLIM. The photostability of FITC was the highest on nanowires with medium loading under continuous laser excitation for 10 min because of the significant reduction in the fluorescence lifetime of FITC on these surfaces. These results clearly demonstrate the potential of Ag nanowires in metal-enhanced fluorescence-based applications of biosensing on planar surfaces and cellular imaging.
从高纵横比(>100)的银(Ag)纳米线中获得了荧光发射的高度增强、荧光团光稳定性的改善以及荧光寿命的显著降低。发现这些量取决于玻璃载玻片上Ag纳米线的表面负载量,其中荧光发射的增强随着纳米线密度的增加而增加。表面负载依赖性归因于Ag纳米线网络周围强电场的产生以及荧光团激发态的耦合,这种耦合在距离纳米线表面10 nm处有效发生,这一点已通过理论计算得到证实。通过荧光光谱和荧光寿命成像显微镜(FLIM)评估了异硫氰酸荧光素(FITC)的荧光发射增强,以证明高纵横比Ag纳米线的潜力。通过FLIM在高负载的Ag纳米线上观察到荧光增强因子超过14。由于FITC在这些表面上的荧光寿命显著降低,在连续激光激发10分钟的情况下,FITC在中等负载的纳米线上的光稳定性最高。这些结果清楚地证明了Ag纳米线在基于金属增强荧光的平面生物传感和细胞成像应用中的潜力。