Highly-stable, multi-megahertz circular-ranging optical coherence tomography at 1.3 um
Norman Lippok, Brett E. Bouma, Benjamin J. Vakoc

TL;DR
This paper introduces a highly stable, high-speed circular-ranging optical coherence tomography system operating at 1.3 um, overcoming previous stability and wavelength limitations for improved biological tissue imaging.
Contribution
The authors develop a novel CR-OCT architecture with enhanced stability, simplified design, and wavelength flexibility, enabling operation at 1.3 um with high speed and long imaging range.
Findings
Achieved stable operation with a 7.6 MHz A-line rate.
Maintained a 4 cm imaging range with 100 nm bandwidth.
Shifted operational wavelength to 1.29 um for better tissue penetration.
Abstract
In Fourier-domain optical coherence tomography (OCT), the finite bandwidth of the acquisition electronics constrains the depth range and speed of the system. Circular-ranging (CR) OCT methods use optical-domain compression to surpass this limit. However, the CR-OCT system architectures of prior reports were limited by poor stability and were confined to the 1.55 um wavelength range. In this work, we describe a novel CR-OCT architecture that is free from these limitations. To ensure stable operation, temperature sensitive optical modules within the system were replaced; the kilometer-length fiber spools used in the stretched-pulse mode-locked (SPML) laser was eliminated in favor of a single 10 meter, continuously chirped fiber Bragg grating, and the interferometer's passive optical quadrature demodulation circuit was replaced by an active technique using a lithium niobate phase…
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Taxonomy
TopicsOptical Coherence Tomography Applications · Photoacoustic and Ultrasonic Imaging · Advanced Fiber Laser Technologies
