• DocumentCode
    3488272
  • Title

    Biosensing based upon molecular confinement in metallic nanocavity arrays

  • Author

    Liu, Y. ; Blair, S.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Utah Univ., Salt Lake City, UT, USA
  • fYear
    2004
  • fDate
    28-30 June 2004
  • Firstpage
    31
  • Lastpage
    32
  • Abstract
    Research world-wide on biosensing techniques is motivated by numerous applications in clinical diagnostics, genetic screenings, proteomics, and single-molecule detection, for example. However, the important problem of detecting in parallel a large number of molecular species from very small samples remains an elusive goal. This work represents a step in that direction through the development of a biosensor platform in which enhanced fluorescence transduction occurs through the optical excitation of molecules located within metallic nanocavities. This study also demonstrates that the phenomenon of enhanced transmission can be used as a technique for molecular transduction in optical biosensor applications with the important benefits of an apparent increase in fluorescence yield and isolation from fluorescence produced by unbound species. Finally, we demonstrate that real-time biosensing can be performed by monitoring the fluorescence signal produced due to the hybridization between probe oligonucleotide´s immobilized within the nanocavities and complementary target oligonucleotides in solution introduced through a microfluidic channel.
  • Keywords
    biosensors; electron beam lithography; fluorescence; microfluidics; molecular biophysics; nanostructured materials; optical arrays; optical sensors; probes; surface plasmon resonance; fluorescence signal monitoring; fluorescence transduction; metallic nanocavity arrays; microfluidic channel; molecular confinement; optical biosensor application; optical molecular excitation; probe oligonucleotide; real-time biosensing; Biomedical optical imaging; Biosensors; Fluorescence; Optical arrays; Optical coupling; Optical films; Optical surface waves; Plasmons; Rough surfaces; Surface roughness;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Biophotonics/Optical Interconnects and VLSI Photonics/WBM Microcavities, 2004 Digest of the LEOS Summer Topical Meetings
  • ISSN
    1099-4742
  • Print_ISBN
    0-7803-8306-0
  • Type

    conf

  • DOI
    10.1109/LEOSST.2004.1338665
  • Filename
    1338665