US2023218162A1PendingUtilityA1

Common path waveguides for stable optical coherence tomography imaging

Assignee: ALCON INCPriority: Mar 1, 2018Filed: Feb 24, 2023Published: Jul 13, 2023
Est. expiryMar 1, 2038(~11.6 yrs left)· nominal 20-yr term from priority
G01B 9/02057A61B 3/102G01B 9/02091A61B 5/0066A61B 2560/0223A61F 2009/00851A61F 9/008G02B 6/02395
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Claims

Abstract

An OCT imaging system may include an OCT light source operable to emit an OCT light beam, and a beam splitter operable to split the OCT light beam into a sample beam, transferred to a sample arm waveguide, and a reference beam, transferred to a reference arm waveguide. The sample arm waveguide and the reference arm waveguide may be coupled together within a cladding, wherein the cladding improves a calibration of a generated OCT image by fixing axial movement of the sample arm and reference arm waveguides relative to one another. By routing long reference and sample arm waveguide fibers together in the OCT system using a sheath/cladding, OCT image offset due to asymmetrical fiber stretching can be minimized or eliminated.

Claims

exact text as granted — not AI-modified
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         21 . An Optical Coherence Tomography (OCT) imaging system, comprising:
 an OCT light source operable to emit an OCT light beam;   a beam splitter operable to split the OCT light beam into a sample beam, transferred to a sample arm waveguide, and a reference beam, transferred to a reference arm waveguide;   a buffer disposed over the reference arm waveguide and the sample arm waveguide, wherein the buffer improves a calibration of a generated OCT image by reducing axial movement of the sample arm waveguide and reference arm waveguide relative to one another.   
     
     
         22 . The OCT imaging system of  claim 21 , wherein the reference arm waveguide comprises a first core surrounded by a first section of cladding concentrically disposed over the first core, and wherein the sample arm waveguide comprises a second core surrounded by a second section of cladding concentrically disposed over the second core. 
     
     
         23 . The OCT imaging system of  claim 21 , wherein the reference arm waveguide and the sample arm waveguide are twisted within the buffer such that there exists substantially equivalent physical stretching and/or compression on the reference arm waveguide and the sample arm waveguide. 
     
     
         24 . The OCT imaging system of  claim 1 , further comprising a probe operable to guide the sample beam onto a target and to receive a returned sample beam from the target. 
     
     
         25 . The OCT imaging system of  claim 24 , further comprising an imaging processor operable to generate the OCT image from an interference beam detected by an imaging detector. 
     
     
         26 . The OCT imaging system of  claim 21 , wherein the beam splitter is operable to generate the interference beam from the returned sample beam and a returned reference beam. 
     
     
         27 . The OCT imaging system of  claim 21 , further comprising a hollow jacket disposed over the buffer. 
     
     
         28 . The OCT imaging system of  claim 21 , further comprising a non-stretchable wire extending substantially parallel along the reference arm waveguide and the sample arm waveguide.

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