• DocumentCode
    594122
  • Title

    Manipulating forces in optical vortex using plasmonic bumps

  • Author

    Khoo, Eng Huat ; Ahmed, Ishtiaq ; Ang, M.T.W. ; Li, E.P.

  • Author_Institution
    Electron. & Photonics Dept., A*STAR Inst. of High Performance Comput., Singapore, Singapore
  • fYear
    2012
  • fDate
    13-16 Dec. 2012
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    In this paper, small plasmonic nanobumps, which consist of metal/dielectric layers are placed on the ring of optical vortex to enhance electric field ampltiude. In this paper, a plasmonic nanobump is placed on the ring of smaller optical vortex. The smaller optical vortex form from the resultant topological phase between the handedness of the incident circular polarized light and the nanoslits spiral. Different designs of plasmonic nanobump are investigated, and tapered nanobump produced higher field enhancement due to higher surface charge density at the tapering end. Higher field intensity at the tip of the plasmonic nanobump produces lower potential, which attract nanoparticle to the region. The optical force increases by the square of the electric field amplitude. This high electric field intensity at the plasmonic nanobump functions as attractive node, which trap molecules inside the optical vortex. Additional plasmonic nanobumps are added onto the other locations of the optical vortex to manipulate the particle trapping positions. This allows the precise control of molecule´s position and movement for imaging, characterization and analysis, which is useful for mobile lab-on-chip devices.
  • Keywords
    light polarisation; nanoparticles; nanophotonics; optical design techniques; optical vortices; plasmonics; electric field ampltiude; electric field intensity; field enhancement; field intensity; incident circular polarized light; metal-dielectric layers; mobile lab-on-chip devices; molecule position; nanoparticle; nanoslit spiral; optical force; optical vortex; particle trapping positions; plasmonic nanobumps; surface charge density; tapered nanobump; topological phase; Charge carrier processes; Extraterrestrial measurements; Gold; Large Hadron Collider; Optical design; Optical polarization; localized surface plasmon; optical vortex; plasmonic; polarization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Photonics Global Conference (PGC), 2012
  • Conference_Location
    Singapore
  • Print_ISBN
    978-1-4673-2513-4
  • Type

    conf

  • DOI
    10.1109/PGC.2012.6458008
  • Filename
    6458008