Department of Materials Science & State Key Laboratory of ASIC and Systems, Fudan University, Shanghai 200433, China.
Key Laboratory of Nanodevices and Applications, Suzhou Institute of Nano-tech and Nano-bionics, Chinese Academy of Sciences, Suzhou 215125, China.
Lab Chip. 2016 Nov 1;16(22):4406-4414. doi: 10.1039/c6lc01148a.
Miniaturization of functional devices and systems demands new design and fabrication approaches for lab-on-a-chip application and optical integrative systems. By using a direct laser writing (DLW) technique based on two-photon polymerization (TPP), a highly integrative optofluidic refractometer is fabricated and demonstrated based on tubular optical microcavities coupled with waveguides. Such tubular devices can support high quality factor (Q-factor) up to 3600 via fiber taper coupling. Microtubes with various diameters and wall thicknesses are constructed with optimized writing direction and conditions. Under a liquid-in-tube sensing configuration, a maximal sensitivity of 390 nm per refractive index unit (RIU) is achieved with subwavelength wall thickness (0.5 μm), which offers a detection limit of the devices in the order of 10 RIU. Such tubular microcavities with coupled waveguides underneath present excellent optofluidic sensing performance, which proves that TPP technology can integrate more functions or devices on a chip in one-step formation.
功能器件和系统的微型化需要新的设计和制造方法,以满足微流控芯片应用和光学集成系统的需求。通过使用基于双光子聚合(TPP)的直接激光写入(DLW)技术,我们制作并展示了一种基于管状光学微腔与波导耦合的高度集成的光流体折射计。这种管状器件通过光纤锥耦合可支持高达 3600 的高品质因子(Q 因子)。通过优化的写入方向和条件,可以构建具有不同直径和壁厚的微管。在管内液体传感配置下,亚波长壁厚(0.5μm)下的最大折射率单位(RIU)灵敏度达到 390nm,检测限为 10RIU 左右。这种具有耦合波导的管状微腔具有出色的光流体传感性能,证明 TPP 技术可以在一步形成中在芯片上集成更多功能或器件。