• DocumentCode
    669562
  • Title

    Surface energy modification method using x-ray synchrotron irradiation for controlling bacterial adhesion on biodegradable-polymer structures for bacteria-flagellated microrobots

  • Author

    Hyung Jung Yoo ; Sangmin Lee ; Jaehyun Ahn ; Sungjin Oh ; Byeonghwa Song ; Sung Jae Kim ; Jong-Mo Seo ; Tae-You Kim ; Dong-Il Cho

  • Author_Institution
    ASRI, Seoul Nat. Univ., Seoul, South Korea
  • fYear
    2013
  • fDate
    20-23 Oct. 2013
  • Firstpage
    1521
  • Lastpage
    1524
  • Abstract
    Bacteria-based biomedical microrobots have been proposed to achieve effective localized drug delivery. To enhance a directional locomotion of bacteria-attached microsystem, structures with selective bacterial adhesion are necessary. Having different surface morphologies of microstructures is beneficial for selective attachments of bacteria. In this paper, a surface energy modification method for controlling bacterial adhesion on biodegradable-polymer structures is presented. This is achieved by controlling exposed doses of x-ray synchrotron irradiation. To calculate the x-ray exposure time for varying the surface morphology of the biodegradable polymeric devices, the equation for exposed dose is derived. The contact angles of different surfaces are measured, and the corresponding surface energies are calculated to verify the modification of the surface morphology. As a result, the surface energy increases with the increment of the exposed dose to the biodegradable-polymer. The developed surface energy modification method is suitable for modifying the polymeric surface without additional physical/chemical treatments. The fabricated cubic structures with different surface morphologies can be used for effectively flagellating bacteria on selective surfaces for directional locomotion.
  • Keywords
    adhesion; drug delivery systems; medical robotics; microorganisms; microrobots; polymers; synchrotron radiation; X-ray exposure time; X-ray synchrotron irradiation; bacteria-attached microsystem; bacteria-based biomedical microrobot; bacteria-flagellated microrobot; bacterial adhesion; biodegradable polymeric device; biodegradable-polymer structure; contact angle; cubic structure; directional locomotion; localized drug delivery; surface energy modification; surface morphology; Adhesives; Biomedical imaging; Films; Microorganisms; Photonics; Polymers; Surface morphology; Biodegradable-polymer; Drug delivery system; Selective bacterial adhesion; Surface energy modification; X-ray synchrotron irradiation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Control, Automation and Systems (ICCAS), 2013 13th International Conference on
  • Conference_Location
    Gwangju
  • ISSN
    2093-7121
  • Print_ISBN
    978-89-93215-05-2
  • Type

    conf

  • DOI
    10.1109/ICCAS.2013.6704128
  • Filename
    6704128