Errando-Herranz Carlos, Saharil Farizah, Romero Albert Mola, Sandström Niklas, Shafagh Reza Zandi, van der Wijngaart Wouter, Haraldsson Tommy, Gylfason Kristinn B
Opt Express. 2013 Sep 9;21(18):21293-8. doi: 10.1364/OE.21.021293.
We present a novel integration method for packaging silicon photonic sensors with polymer microfluidics, designed to be suitable for wafer-level production methods. The method addresses the previously unmet manufacturing challenges of matching the microfluidic footprint area to that of the photonics, and of robust bonding of microfluidic layers to biofunctionalized surfaces. We demonstrate the fabrication, in a single step, of a microfluidic layer in the recently introduced OSTE polymer, and the subsequent unassisted dry bonding of the microfluidic layer to a grating coupled silicon photonic ring resonator sensor chip. The microfluidic layer features photopatterned through holes (vias) for optical fiber probing and fluid connections, as well as molded microchannels and tube connectors, and is manufactured and subsequently bonded to a silicon sensor chip in less than 10 minutes. Combining this new microfluidic packaging method with photonic waveguide surface gratings for light coupling allows matching the size scale of microfluidics to that of current silicon photonic biosensors. To demonstrate the new method, we performed successful refractive index measurements of liquid ethanol and methanol samples, using the fabricated device. The minimum required sample volume for refractive index measurement is below one nanoliter.
我们提出了一种用于将硅光子传感器与聚合物微流体进行封装的新型集成方法,该方法设计适用于晶圆级生产工艺。该方法解决了此前未满足的制造难题,即微流体覆盖面积与光子学覆盖面积的匹配,以及微流体层与生物功能化表面的牢固键合。我们展示了在最近推出的OSTE聚合物中一步制造微流体层,以及随后将微流体层与光栅耦合硅光子环形谐振器传感器芯片进行无辅助干式键合的过程。微流体层具有用于光纤探测和流体连接的光刻通孔(过孔),以及模制微通道和管接头,并且在不到10分钟的时间内制造并随后键合到硅传感器芯片上。将这种新的微流体封装方法与用于光耦合的光子波导表面光栅相结合,可以使微流体的尺寸规模与当前的硅光子生物传感器相匹配。为了演示该新方法,我们使用制造的器件对液体乙醇和甲醇样品进行了成功的折射率测量。折射率测量所需的最小样品体积低于一纳升。