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Optofluidic microvalve-on-a-chip with a surface plasmon-enhanced fiber optic microheater

机译:具有表面等离子体激元增强的光纤微加热器的单芯片微流控微阀

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摘要

We present an optofluidic microvalve utilizing an embedded, surface plasmon-enhanced fiber optic microheater. The fiber optic microheater is formed by depositing a titanium thin film on the roughened end-face of a silica optical fiber that serves as a waveguide to deliver laser light to the titanium film. The nanoscale roughness at the titanium-silica interface enables strong light absorption enhancement in the titanium film through excitation of localized surface plasmons as well as facilitates bubble nucleation. Our experimental results show that due to the unique design of the fiber optic heater, the threshold laser power required to generate a bubble is greatly reduced and the bubble growth rate is significantly increased. By using the microvalve, stable vapor bubble generation in the microchannel is demonstrated, which does not require complex optical focusing and alignment. The generated vapor bubble is shown to successfully block a liquid flow channel with a size of 125 μm × 125 μm and a flow rate of ∼10 μl/min at ∼120 mW laser power.
机译:我们介绍了一种利用嵌入式表面等离激元增强型光纤微加热器的光流体微阀。光纤微加热器是通过在石英光纤的粗糙端面上沉积一层钛薄膜而形成的,该石英光纤用作将激光传输到钛膜的波导。钛-二氧化硅界面处的纳米级粗糙度可通过激发局部表面等离激元来增强钛膜中的光吸收,并促进气泡成核。我们的实验结果表明,由于光纤加热器的独特设计,大大降低了产生气泡所需的阈值激光功率,并显着提高了气泡生长速度。通过使用微阀,证明了在微通道中稳定的蒸气气泡生成,不需要复杂的光学聚焦和对准。所产生的气泡显示出在120mW的激光功率下成功地阻塞了尺寸为125μm××125μm,流速为10μl/ min的液体流动通道。

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