• DocumentCode
    1525760
  • Title

    Enhanced Absorption of Microwaves Within Cylindrical Holes in Teflon Film

  • Author

    Alekseev, Stanislav I. ; Fesenko, Evgeny E. ; Ziskin, Marvin C.

  • Author_Institution
    Med. Sch., Center for Biomed. Phys., Temple Univ., Philadelphia, PA, USA
  • Volume
    57
  • Issue
    10
  • fYear
    2010
  • Firstpage
    2517
  • Lastpage
    2524
  • Abstract
    Earlier publications demonstrated that 0.9 GHz microwave exposure induced notable changes of the conductivity of modified bilayer lipid membranes (BLM) formed in holes in thin Teflon film (TF). The aims of this study were: 1) to perform detailed calculations of the microwave field distributions in holes formed in TF, using the finite-difference time-domain technique and 2) to model microwave heating of the hole under the conditions used in the BLM experiments but in the absence of BLM in the hole. We found that with the E -field oriented perpendicular to the TF plane the local-specific absorption rate in holes increased significantly. The increase became larger with increasing electrolyte concentration and with decreasing diameter of the hole and frequency. The calculated temperature elevations in the hole were in good agreement with those determined experimentally. These findings allowed us to conclude that the microwave effects on BLM conductivity reported previously resulted mostly from the enhanced absorption of microwave energy by the membrane-forming holes and subsequent local temperature elevation in the holes.
  • Keywords
    biological effects of microwaves; biomembranes; finite difference time-domain analysis; lipid bilayers; microwave heating; Teflon film; cylindrical hole; electrolyte concentration; enhanced microwave absorption; finite difference time domain technique; local specific absorption rate; microwave field distribution; microwave heating; modified bilayer lipid membrane; Bilayer lipid membrane (BLM); electromagnetic field distribution; finite-difference time-domain (FDTD) technique; thermal model; Absorption; Electromagnetic Fields; Lipid Bilayers; Microwaves; Models, Biological; Polytetrafluoroethylene; Surface Properties; Temperature;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2010.2055053
  • Filename
    5497106