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1.
Opt Lett ; 29(7): 736-8, 2004 Apr 01.
Article in English | MEDLINE | ID: mdl-15072375

ABSTRACT

Comparison of two illumination modes for wide-field optical coherence tomography has revealed that spatially coherent illumination generates coherent cross talk, causing significant image degradation, and that spatially incoherent illumination, with an adequate interferometer design, provides an efficient mechanism for suppression of coherent cross talk. This is shown by comparison of a pulsed laser with a thermal light source for a U.S. Air Force resolution target covered with a scattering solution made from microbeads as well as for an ex vivo tooth.


Subject(s)
Artifacts , Lighting , Models, Theoretical , Tomography, Optical Coherence , Equipment Design , Interferometry/instrumentation , Lasers , Microspheres , Scattering, Radiation , Tomography, Optical Coherence/instrumentation
2.
Opt Lett ; 28(24): 2476-8, 2003 Dec 15.
Article in English | MEDLINE | ID: mdl-14690119

ABSTRACT

A simple method for the calibration of optical path difference modulation in low-coherence interferometry is presented. Spectrally filtering a part of the detected interference signal results in a high-coherence signal that encodes the scan imperfections and permits their correction. The method is self-referenced in the sense that no secondary high-coherence light source is necessary. Using a spectrometer setup for spectral filtering allows for flexibility in both the choice of calibration wavelength and the maximum scan range. To demonstrate the method's usefulness, it is combined with a recently published digital spectral shaping technique to measure the thickness of a pellicle beam splitter with a white-light source.


Subject(s)
Calibration , Interferometry , Models, Theoretical , Reference Values , Spectrum Analysis
3.
Opt Express ; 9(12): 610-5, 2001 Dec 03.
Article in English | MEDLINE | ID: mdl-19424297

ABSTRACT

Dispersive samples introduce a wavelength dependent phase distortion to the probe beam. This leads to a noticeable loss of depth resolution in high resolution OCT using broadband light sources. The standard technique to avoid this consequence is to balance the dispersion of the sample byarrangingadispersive materialinthereference arm. However, the impact of dispersion is depth dependent. A corresponding depth dependent dispersion balancing technique is diffcult to implement. Here we present a numerical dispersion compensation technique for Partial Coherence Interferometry (PCI) and Optical Coherence Tomography (OCT) based on numerical correlation of the depth scan signal with a depth variant kernel. It can be used a posteriori and provides depth dependent dispersion compensation. Examples of dispersion compensated depth scan signals obtained from microscope cover glasses are presented.

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