Literature DB >> 25131718

A microfabricated optofluidic ring resonator for sensitive, high-speed detection of volatile organic compounds.

Kee Scholten1, Xudong Fan, Edward T Zellers.   

Abstract

Advances in microanalytical systems for multi-vapor determinations to date have been impeded by limitations associated with the microsensor technologies employed. Here we introduce a microfabricated optofluidic ring resonator (μOFRR) sensor that addresses many of these limitations. The μOFRR combines vapor sensing and fluidic transport functions in a monolithic microstructure comprising a hollow, vertical SiOx cylinder (250 μm i.d., 1.2 μm wall thickness; 85 μm height) with a central quasi-toroidal mode-confinement section, grown and partially released from a Si substrate. The device also integrates on-chip fluidic-interconnection and fiber-optic probe alignment features. High-Q whispering gallery modes generated with a tunable 1550 nm laser exhibit rapid, reversible shifts in resonant wavelength arising from polymer swelling and refractive index changes as vapors partition into the ~300 nm PDMS film lining the cylinder. Steady-state sensor responses varied in proportion to concentration over a 50-fold range for the five organic vapors tested, providing calculated detection limits as low as 0.5 ppm (v/v) (for m-xylene and ethylbenzene). In dynamic exposure tests, responses to 5 μL injected m-xylene vapor pulses were 710 ms wide and were only 18% broader than those from a reference flame-ionization detector and also varied linearly with injected mass; 180 pg was measured and the calculated detection limit was 49 pg without use of preconcentration or split injection, at a flow rate compatible with efficient chromatographic separations. Coupling of this μOFRR with a micromachined gas chromatographic separation column is demonstrated.

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Year:  2014        PMID: 25131718     DOI: 10.1039/c4lc00739e

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  6 in total

1.  Optofluidic bioanalysis: fundamentals and applications.

Authors:  Damla Ozcelik; Hong Cai; Kaelyn D Leake; Aaron R Hawkins; Holger Schmidt
Journal:  Nanophotonics       Date:  2017-03-16       Impact factor: 8.449

2.  Applications of Optical Microcavity Resonators in Analytical Chemistry.

Authors:  James H Wade; Ryan C Bailey
Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2016-03-30       Impact factor: 10.745

3.  Dynamic manipulation of particles via transformative optofluidic waveguides.

Authors:  Kang Soo Lee; Kyung Heon Lee; Sang Bok Kim; Byung Hang Ha; Jin Ho Jung; Hyung Jin Sung; Sang Soo Kim
Journal:  Sci Rep       Date:  2015-10-16       Impact factor: 4.379

Review 4.  Optofluidics Refractometers.

Authors:  Cheng Li; Gang Bai; Yunxiao Zhang; Min Zhang; Aoqun Jian
Journal:  Micromachines (Basel)       Date:  2018-03-20       Impact factor: 2.891

5.  Laser-tuned whispering gallery modes in a solid-core microstructured optical fibre integrated with magnetic fluids.

Authors:  Wei Lin; Hao Zhang; Bo Liu; Binbin Song; Yuetao Li; Chengkun Yang; Yange Liu
Journal:  Sci Rep       Date:  2015-12-03       Impact factor: 4.379

6.  A fully electronic microfabricated gas chromatograph with complementary capacitive detectors for indoor pollutants.

Authors:  Yutao Qin; Yogesh B Gianchandani
Journal:  Microsyst Nanoeng       Date:  2016-02-29       Impact factor: 7.127

  6 in total

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