| Literature DB >> 25401008 |
Zhao Wang1, Hsiang-Chieh Lee1, Osman Oguz Ahsen1, ByungKun Lee1, WooJhon Choi1, Benjamin Potsaid2, Jonathan Liu1, Vijaysekhar Jayaraman3, Alex Cable2, Martin F Kraus4, Kaicheng Liang1, Joachim Hornegger4, James G Fujimoto1.
Abstract
Polarization sensitive optical coherence tomography (PS-OCT) is a functional extension of conventional OCT and can assess depth-resolved tissue birefringence in addition to intensity. Most existing PS-OCT systems are relatively complex and their clinical translation remains difficult. We present a simple and robust all-fiber PS-OCT system based on swept source technology and polarization depth-encoding. Polarization multiplexing was achieved using a polarization maintaining fiber. Polarization sensitive signals were detected using fiber based polarization beam splitters and polarization controllers were used to remove the polarization ambiguity. A simplified post-processing algorithm was proposed for speckle noise reduction relaxing the demand for phase stability. We demonstrated systems design for both ophthalmic and catheter-based PS-OCT. For ophthalmic imaging, we used an optical clock frequency doubling method to extend the imaging range of a commercially available short cavity light source to improve polarization depth-encoding. For catheter based imaging, we demonstrated 200 kHz PS-OCT imaging using a MEMS-tunable vertical cavity surface emitting laser (VCSEL) and a high speed micromotor imaging catheter. The system was demonstrated in human retina, finger and lip imaging, as well as ex vivo swine esophagus and cardiovascular imaging. The all-fiber PS-OCT is easier to implement and maintain compared to previous PS-OCT systems and can be more easily translated to clinical applications due to its robust design.Entities:
Keywords: (170.4500) Optical coherence tomography; (170.4580) Optical diagnostics for medicine; (230.5440) Polarization-selective devices
Year: 2014 PMID: 25401008 PMCID: PMC4230879 DOI: 10.1364/BOE.5.002931
Source DB: PubMed Journal: Biomed Opt Express ISSN: 2156-7085 Impact factor: 3.732