• DocumentCode
    77298
  • Title

    Accurate Modeling and Design of Graded-Index Fiber Probes for Optical Coherence Tomography Using the Beam Propagation Method

  • Author

    Lorenser, D. ; Yang, Xu ; Sampson, D.D.

  • Author_Institution
    Sch. of Electr., Electron. & Comput. Eng., Univ. of Western Australia, Perth, WA, Australia
  • Volume
    5
  • Issue
    2
  • fYear
    2013
  • fDate
    Apr-13
  • Firstpage
    3900015
  • Lastpage
    3900015
  • Abstract
    Fiber-optic probes for sensing and biomedical imaging applications such as optical coherence tomography (OCT) frequently employ sections of graded-index (GRIN) fiber to re-focus the diverging light from the delivery fiber. Such GRIN fiber microlenses often possess aberrations that cause significant distortions of the focused output beam. Current design methods based on ABCD matrix transformations of Gaussian beams cannot model such effects and are therefore inadequate for the analysis and design of high-performance probes that require diffraction-limited output beams. We demonstrate use of the beam propagation method (BPM) to analyze beam distortion in GRIN-lensed fibers resulting from index profiles that exhibit a deviation from the ideal parabolic shape or artifacts such as ripples or a central dip. Furthermore, we demonstrate the power of this method for exploring novel probe designs that incorporate GRIN phase masks to generate wavefront-shaped output beams with extended depth-of-focus (DOF). We present results using our method that are in good agreement with experimental data. The BPM enables accurate simulation of fiber probes using non-ideal or custom-engineered GRIN fibers with arbitrary refractive index profiles, which is important in the design of high-performance fiber-based micro-imaging systems for biomedical applications.
  • Keywords
    biomedical imaging; fibre optic sensors; gradient index optics; microlenses; ABCD matrix transformations; GRIN fiber microlenses; Gaussian beams; accurate modeling; beam propagation method; biomedical imaging applications; delivery fiber; depth-of-focus; fiber-optic probes; graded-index fiber probes; optical coherence tomography; Indexes; Lenses; Numerical models; Optical imaging; Optical sensors; Probes; Refractive index; Biomedical optical imaging; optical microscopy;
  • fLanguage
    English
  • Journal_Title
    Photonics Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1943-0655
  • Type

    jour

  • DOI
    10.1109/JPHOT.2013.2250939
  • Filename
    6472722