Title :
Mid-infrared opto-nanofluidics for on-chip chemical sensing
Author :
Pao Tai Lin ; Sen Wai Kwok ; Lin, Hao-Yu Greg ; Singh, V. ; Kimerling, Lionel C. ; Whitesides, George M. ; Tan, Dawn T. H. ; Agarwa, Anu
Author_Institution :
Microphotonics Center, Massachusetts Inst. of Technol., Cambridge, MA, USA
Abstract :
A mid-infrared (mid-IR) label-free chemical sensor was developed using opto-nanofluidics consisting of a Si-liquid-Si slot-structure. A broadband mid-IR lightwave can be strongly confined within a nanofluidic capillary by utilizing the large refractive index contrast (Δn ~ 2) between the liquid core waveguide and the Si cladding. Through an optical-field enhancement together with a direct interaction between the probe light and the analyte, the sensitivity for chemical detection is increased by 50 times when compared to evanescent-wave sensing. This spectral characterization 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 mid-IR absorption peaks. The combination of CMOS-compatible planar mid-IR microphotonics, and a high-throughput nanofluidic sensor system, provides a unique platform for chemical detection.
Keywords :
CMOS integrated circuits; chemical sensors; claddings; elemental semiconductors; infrared detectors; light absorption; micro-optics; microsensors; nanofluidics; nanosensors; optical scanners; optical sensors; refractive index measurement; silicon; CMOS-compatible planar midIR microphotonics; Si-Si; Si-liquid-Si slot-structure; acetonitrile; broadband midIR lightwave; cladding; ethanol; evanescent-wave sensing; high-throughput nanofluidic sensor system; isopropanol; liquid core waveguide; midIR absorption peak; midIR label-free chemical sensor; midinfrared optonanofluidics; n-bromohexane; nanofluidic capillary; on-chip chemical sensing; optical-field enhancement; organic liquid; refractive index contrast; spectral scanning characterization; toluene; Absorption; Chemicals; Optical surface waves; Optical waveguides; Probes; Silicon; System-on-chip;
Conference_Titel :
Nanotechnology (IEEE-NANO), 2014 IEEE 14th International Conference on
Conference_Location :
Toronto, ON
DOI :
10.1109/NANO.2014.6968156