Literature DB >> 22951593

Terahertz microfluidic sensing using a parallel-plate waveguide sensor.

Victoria Astley1, Kimberly Reichel, Rajind Mendis, Daniel M Mittleman.   

Abstract

Refractive index (RI) sensing is a powerful noninvasive and label-free sensing technique for the identification, detection and monitoring of microfluidic samples with a wide range of possible sensor designs such as interferometers and resonators. Most of the existing RI sensing applications focus on biological materials in aqueous solutions in visible and IR frequencies, such as DNA hybridization and genome sequencing. At terahertz frequencies, applications include quality control, monitoring of industrial processes and sensing and detection applications involving nonpolar materials. Several potential designs for refractive index sensors in the terahertz regime exist, including photonic crystal waveguides, asymmetric split-ring resonators, and photonic band gap structures integrated into parallel-plate waveguides. Many of these designs are based on optical resonators such as rings or cavities. The resonant frequencies of these structures are dependent on the refractive index of the material in or around the resonator. By monitoring the shifts in resonant frequency the refractive index of a sample can be accurately measured and this in turn can be used to identify a material, monitor contamination or dilution, etc. The sensor design we use here is based on a simple parallel-plate waveguide. A rectangular groove machined into one face acts as a resonant cavity (Figures 1 and 2). When terahertz radiation is coupled into the waveguide and propagates in the lowest-order transverse-electric (TE1) mode, the result is a single strong resonant feature with a tunable resonant frequency that is dependent on the geometry of the groove. This groove can be filled with nonpolar liquid microfluidic samples which cause a shift in the observed resonant frequency that depends on the amount of liquid in the groove and its refractive index. Our technique has an advantage over other terahertz techniques in its simplicity, both in fabrication and implementation, since the procedure can be accomplished with standard laboratory equipment without the need for a clean room or any special fabrication or experimental techniques. It can also be easily expanded to multichannel operation by the incorporation of multiple grooves. In this video we will describe our complete experimental procedure, from the design of the sensor to the data analysis and determination of the sample refractive index.

Mesh:

Year:  2012        PMID: 22951593      PMCID: PMC3486774          DOI: 10.3791/4304

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  4 in total

1.  Integrated refractive index optical ring resonator detector for capillary electrophoresis.

Authors:  Hongying Zhu; Ian M White; Jonathan D Suter; Mohammed Zourob; Xudong Fan
Journal:  Anal Chem       Date:  2007-02-01       Impact factor: 6.986

2.  Comparison of the lowest-order transverse-electric (TE1) and transverse-magnetic (TEM) modes of the parallel-plate waveguide for terahertz pulse applications.

Authors:  Rajind Mendis; Daniel M Mittleman
Journal:  Opt Express       Date:  2009-08-17       Impact factor: 3.894

Review 3.  Optical sensing systems for microfluidic devices: a review.

Authors:  Bambang Kuswandi; Jurriaan Huskens; Willem Verboom
Journal:  Anal Chim Acta       Date:  2007-09-01       Impact factor: 6.558

4.  Analysis of rectangular resonant cavities in terahertz parallel-plate waveguides.

Authors:  Victoria Astley; Blake McCracken; Rajind Mendis; Daniel M Mittleman
Journal:  Opt Lett       Date:  2011-04-15       Impact factor: 3.776

  4 in total

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