Curry Adam, Nusz Gregory, Chilkoti Ashutosh, Wax Adam
Department of Biomedical Engineering, Duke University, Durham, North Carolina 27708, USA.
Appl Opt. 2007 Apr 1;46(10):1931-9. doi: 10.1364/ao.46.001931.
One goal of recent research on plasmonic nanoparticle-based sensors is maximizing nanoparticle sensitivity or shift of resonance peak wavelength per refractive index change. Equally important is a measurement system's peak location uncertainty or shift resolution. We provide systematic analyses and discuss optimization of factors that determine peak location uncertainty, reporting values as low as 0.3 nm for the presented scheme. This type of analysis is important, in part, because it provides a means of evaluating detection thresholds for biosensor applications such as analyte binding. We estimate thresholds of 310 streptavidin molecules for the presented scheme and 20 molecules with system improvements.
近期基于等离激元纳米颗粒的传感器研究的一个目标是使纳米颗粒的灵敏度最大化,即每单位折射率变化时共振峰波长的移动。同样重要的是测量系统的峰位置不确定度或位移分辨率。我们进行了系统分析,并讨论了决定峰位置不确定度的因素的优化,所提出方案的报告值低至0.3纳米。这种类型的分析之所以重要,部分原因在于它提供了一种评估生物传感器应用(如分析物结合)检测阈值的方法。我们估计所提出方案的检测阈值为310个链霉亲和素分子,系统改进后为20个分子。