Lipka T, Moldenhauer L, Wahn L, Trieu H K
Opt Lett. 2017 Mar 15;42(6):1084-1087. doi: 10.1364/OL.42.001084.
The large-scale and low-cost fabrication of high sensitivity sensors for the real-time detection of biochemicals and molecular substances opens up new opportunities in the areas of bioanalytic screening and medical diagnostics. Planar integrated photonic resonators that can be fabricated with a low footprint, in spatial and wavelength multiplexed arrangements, and that enable integration with microfluidics on the wafer scale have emerged as a promising sensing platform for these application fields. We realized an optofluidic and label-free biosensor that is based on hydrogenated amorphous silicon microring resonators embedded in silicon/glass microfluidic channels for analyte injection and biomolecule immobilization. The optofluidic sensor merits for refractive index and biomolecule sensing are evaluated by sensitivity and detection limit simulations, whereas a proof of concept is demonstrated by real-time protein immobilization experiments of functionalized resonators.
用于实时检测生物化学物质和分子物质的高灵敏度传感器的大规模低成本制造,为生物分析筛选和医学诊断领域带来了新机遇。平面集成光子谐振器能够以较小的占地面积、空间和波长复用的方式制造,并且能够在晶圆规模上与微流体集成,已成为这些应用领域中一个很有前景的传感平台。我们实现了一种光流体无标记生物传感器,它基于嵌入硅/玻璃微流体通道中的氢化非晶硅微环谐振器,用于分析物注入和生物分子固定。通过灵敏度和检测限模拟评估了该光流体传感器在折射率和生物分子传感方面的优点,而通过功能化谐振器的实时蛋白质固定实验证明了概念验证。