Tinguely Jean-Claude, Helle Øystein Ivar, Ahluwalia Balpreet Singh
Opt Express. 2017 Oct 30;25(22):27678-27690. doi: 10.1364/OE.25.027678.
Waveguide chip-based microscopy reduces the complexity of total internal reflection fluorescence (TIRF) microscopy, and adds features like large field of view illumination, decoupling of illumination and collection path and easy multimodal imaging. However, for the technique to become widespread there is a need of low-loss and affordable waveguides made of high-refractive index material. Here, we develop and report a low-loss silicon nitride (SiN) waveguide platform for multi-color TIRF microscopy. Single mode conditions at visible wavelengths (488-660 nm) were achieved using shallow rib geometry. To generate uniform excitation over appropriate dimensions waveguide bends were used to filter-out higher modes followed by adiabatic tapering. SiN material is finally shown to be biocompatible for growing and imaging living cells.
基于波导芯片的显微镜技术降低了全内反射荧光(TIRF)显微镜的复杂性,并增加了诸如大视野照明、照明与采集路径解耦以及易于进行多模态成像等特性。然而,要使该技术得到广泛应用,需要由高折射率材料制成的低损耗且价格合理的波导。在此,我们开发并报告了一种用于多色TIRF显微镜的低损耗氮化硅(SiN)波导平台。利用浅肋结构实现了可见光波长(488 - 660 nm)下的单模条件。为了在合适的尺寸上产生均匀激发,使用波导弯曲来滤除高阶模式,随后进行绝热渐缩。最终表明SiN材料对于培养和成像活细胞具有生物相容性。