Microphotonics Center, Massachusetts Institute of Technology , 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States.
Nano Lett. 2014 Jan 8;14(1):231-8. doi: 10.1021/nl403817z. Epub 2013 Dec 24.
A mid-infrared (mid-IR) spectrometer for label-free on-chip chemical sensing was developed using an engineered nanofluidic channel consisting of a Si-liquid-Si slot-structure. Utilizing the large refractive index contrast (Δn ∼ 2) between the liquid core of the waveguide and the Si cladding, a broadband mid-IR lightwave can be efficiently guided and confined within a nanofluidic capillary (≤100 nm wide). The optical-field enhancement, together with the direct interaction between the probe light and the analyte, increased the sensitivity for chemical detection by 50 times when compared to evanescent-wave sensing. This spectrometer distinguished several common organic liquids (e.g., n-bromohexane, toluene, isopropanol) accurately and could determine the ratio of chemical species (e.g., acetonitrile and ethanol) at low concentration (<5 μL/mL) in a mixture through spectral scanning over their characteristic absorption peaks in the mid-IR regime. The combination of CMOS-compatible planar mid-IR microphotonics, and a high-throughput nanofluidic sensor system, provides a unique platform for chemical detection.
利用由 Si-液体-Si 槽结构组成的工程化纳米流道,开发了一种用于无标记片上化学传感的中红外(mid-IR)光谱仪。利用波导的液体芯和 Si 包层之间的大折射率对比度(Δn ∼ 2),宽带 mid-IR 光波可以在纳米流道毛细管(≤100nm 宽)内得到有效引导和限制。与消逝场传感相比,光场增强以及探针光与分析物之间的直接相互作用,将化学检测的灵敏度提高了 50 倍。该光谱仪可以准确区分几种常见的有机液体(例如,正溴己烷、甲苯、异丙醇),并且可以通过在 mid-IR 区域扫描它们的特征吸收峰,确定混合物中低浓度(<5μL/mL)的化学物质(例如,乙腈和乙醇)的比例。CMOS 兼容的平面 mid-IR 微光子学与高通量纳米流道传感器系统的结合,为化学检测提供了一个独特的平台。