High-speed and wide bandwidth Fourier domain mode-locked wavelength swept laser with multiple SOAs
Optics Express, Vol. 16, Issue 4, pp. 2547-2554 (2008)
http://dx.doi.org/10.1364/OE.16.002547
Acrobat PDF (599 KB)
Abstract
We report on the development of a high-speed, wide bandwidth Fourier domain mode-locked (FDML) wavelength swept laser of around 1300 nm using two gain media for high-resolution and high-speed Fourier domain optical coherence tomography. The wavelength swept laser is capable of FWHM scanning range of more than 135 nm at 45.6 kHz sweeping rate. The measured axial resolution of the forward scan is 6.6 µm in air and 4.7 µm in tissue. The peak power is 11.4 mW for both the forward and backward scans. The measured system sensitivity is achieved up to 100.7 dB. We also demonstrate OCT imaging using the FDML wavelength swept laser with two semiconductor optical amplifiers.
© 2008 Optical Society of America
1. Introduction
D. Huang, E. A. Swanson, C. P. Lin, J. S. Schuman, W. G. Stinson, W. Chang, M. R. Hee, T. Flotte, K. Gregory, C. A. Puliafito, and J. G. Fujimoto, “Optical coherence tomography,” Science 254, 178–1181, (1991) [CrossRef]
C. kerbage, H. Lim, W. Sun, M. Mujat, and J. F. de Boer, “Large depth-high resolution full 3D imaging of the anterior segments of the eye using high speed optical frequency domain imaging,” Opt. Express 15, 7117–7125, (2007) [CrossRef] [PubMed]
S. Yun, G. Tearney, B. Bouma, B. Park, and Johannes de Boer, “High-speed spectral-domain optical coherence tomography at 1.3 µm wavelength,” Opt. Express 11, 3598–3604, (2003) [CrossRef] [PubMed]
W. Y. Oh, B. E. Bouma, N. Iftimia, S. H. Yun, R. Yelin, and G. J. Tearney, “Ultrahigh-resolution fullfield optical coherence microscopy using InGaAs camera,” Opt Express 14, 726–735, (2006) [CrossRef] [PubMed]
S. H. Yun, G. Tearney, Johannes de Boer, N. Iftimia, and B. Bouma, “High-speed optical frequency-domain imaging,” Opt Express 11, 2953–2963, (2003) [CrossRef] [PubMed]
J. Zhang, J. S. Nelson, and Z. P. Chen, “Removal of a mirror image and enhancement of the signal-to-noise ratio in Fourier-domain optical coherence tomography using an electro-optic phase modulator,” Opt. Lett. 30, 147–149, (2005) [CrossRef] [PubMed]
C. kerbage, H. Lim, W. Sun, M. Mujat, and J. F. de Boer, “Large depth-high resolution full 3D imaging of the anterior segments of the eye using high speed optical frequency domain imaging,” Opt. Express 15, 7117–7125, (2007) [CrossRef] [PubMed]
S. H. Yun, C. Boudoux, G. J. Tearney, and B. E. Bouma, “High-speed wavelength-swept semiconductor laser with a polygon-scanner-based wavelength swept filter,” Opt. Lett. 28, 1981–1983, (2003) [CrossRef] [PubMed]
R. Huber, M. Wojtkowski, K. Taira, J. G. Fujimoto, and K. Hsu, “Amplified, frequency swept lasers for frequency domain reflectometry and OCT imaging: design and scaling principles,” Opt Express 13, 3513–3518, (2005) [CrossRef] [PubMed]
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed]
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed]
R. Huber, D. C. Adler, and J. G. Fujimoto, “Buffered Fourier domain mode locking: unidirectional swept laser sources for optical coherence tomography imaging at 370,000 lines/s,” Opt. Lett. 31, 2975–2977, (2006) [CrossRef] [PubMed]
R. Huber, D. C. Adler, and J. G. Fujimoto, “Buffered Fourier domain mode locking: unidirectional swept laser sources for optical coherence tomography imaging at 370,000 lines/s,” Opt. Lett. 31, 2975–2977, (2006) [CrossRef] [PubMed]
D. C. Adler, R. Huber, and J. G. Fujimoto, “Phase-sensitive optical coherence tomography at up to 370,000 lines per second using buffered Fourier domain mode-locked lasers,” Opt. Lett. 32, 626–628, (2007) [CrossRef] [PubMed]
M. W. Jenkins, D. C. Adler, M. Gargesha, R. Huber, F. Rothenberg, J. Belding, M. Watanabe, D. L. Wilson, J. G. Fujimoto, and A. M. Rollins, “Ultrahigh-speed optical coherence tomography imaging and visualization of the embryonic avian heart using a buffered Fourier Domain Mode Locked laser,” Opt Express 15, 6251–6267, (2007) [CrossRef] [PubMed]
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed]
D. C. Adler, Y. Chen, R. Huber, J. Schmitt, J. Connolly, and J. G. Fujimoto, “Three-dimensional endomicroscopy using optical coherence tomography,” Nature Photon. 1, 709–716, (2007) [CrossRef]
W. Y. Oh, S. H. Yun, G. J. Tearney, and B. E. Bouma, “Wide tuning range wavelength-swept laser with two semiconductor optical amplifiers,” IEEE Photon. Technol. Lett. 17, 678–680, (2005) [CrossRef]
2. Experimental setup
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed]
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed]
W. Y. Oh, S. H. Yun, G. J. Tearney, and B. E. Bouma, “Wide tuning range wavelength-swept laser with two semiconductor optical amplifiers,” IEEE Photon. Technol. Lett. 17, 678–680, (2005) [CrossRef]
J. Zhang, Q. Wang, B. Rao, and Z. Chen, “Swept laser source at 1 mm for Fourier domain optical coherence tomography,” Appl. Phys. Lett. 89, 073901, (2006) [CrossRef]
3. Experimental results
C. kerbage, H. Lim, W. Sun, M. Mujat, and J. F. de Boer, “Large depth-high resolution full 3D imaging of the anterior segments of the eye using high speed optical frequency domain imaging,” Opt. Express 15, 7117–7125, (2007) [CrossRef] [PubMed]
R. Huber, D. C. Adler, V. J. Srinivasan, and J. G. Fujimoto, “Fourier domain mode locking at 1050 nm for ultra-high-speed optical coherence tomography of human retina at 236,000 axial scans per second,” Opt. Lett. 32, 2049–2051, (2007) [CrossRef] [PubMed]
4. Conclusion
Acknowledgments
References and links
D. Huang, E. A. Swanson, C. P. Lin, J. S. Schuman, W. G. Stinson, W. Chang, M. R. Hee, T. Flotte, K. Gregory, C. A. Puliafito, and J. G. Fujimoto, “Optical coherence tomography,” Science 254, 178–1181, (1991) [CrossRef] | |
C. kerbage, H. Lim, W. Sun, M. Mujat, and J. F. de Boer, “Large depth-high resolution full 3D imaging of the anterior segments of the eye using high speed optical frequency domain imaging,” Opt. Express 15, 7117–7125, (2007) [CrossRef] [PubMed] | |
S. Yun, G. Tearney, B. Bouma, B. Park, and Johannes de Boer, “High-speed spectral-domain optical coherence tomography at 1.3 µm wavelength,” Opt. Express 11, 3598–3604, (2003) [CrossRef] [PubMed] | |
W. Y. Oh, B. E. Bouma, N. Iftimia, S. H. Yun, R. Yelin, and G. J. Tearney, “Ultrahigh-resolution fullfield optical coherence microscopy using InGaAs camera,” Opt Express 14, 726–735, (2006) [CrossRef] [PubMed] | |
S. H. Yun, G. Tearney, Johannes de Boer, N. Iftimia, and B. Bouma, “High-speed optical frequency-domain imaging,” Opt Express 11, 2953–2963, (2003) [CrossRef] [PubMed] | |
J. Zhang, J. S. Nelson, and Z. P. Chen, “Removal of a mirror image and enhancement of the signal-to-noise ratio in Fourier-domain optical coherence tomography using an electro-optic phase modulator,” Opt. Lett. 30, 147–149, (2005) [CrossRef] [PubMed] | |
S. H. Yun, C. Boudoux, G. J. Tearney, and B. E. Bouma, “High-speed wavelength-swept semiconductor laser with a polygon-scanner-based wavelength swept filter,” Opt. Lett. 28, 1981–1983, (2003) [CrossRef] [PubMed] | |
R. Huber, M. Wojtkowski, K. Taira, J. G. Fujimoto, and K. Hsu, “Amplified, frequency swept lasers for frequency domain reflectometry and OCT imaging: design and scaling principles,” Opt Express 13, 3513–3518, (2005) [CrossRef] [PubMed] | |
R. Huber, M. Wojtkowski, and J. G. Fujimoto, “Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography,” Opt Express 14, 3225–3237, (2006) [CrossRef] [PubMed] | |
R. Huber, D. C. Adler, and J. G. Fujimoto, “Buffered Fourier domain mode locking: unidirectional swept laser sources for optical coherence tomography imaging at 370,000 lines/s,” Opt. Lett. 31, 2975–2977, (2006) [CrossRef] [PubMed] | |
D. C. Adler, R. Huber, and J. G. Fujimoto, “Phase-sensitive optical coherence tomography at up to 370,000 lines per second using buffered Fourier domain mode-locked lasers,” Opt. Lett. 32, 626–628, (2007) [CrossRef] [PubMed] | |
M. W. Jenkins, D. C. Adler, M. Gargesha, R. Huber, F. Rothenberg, J. Belding, M. Watanabe, D. L. Wilson, J. G. Fujimoto, and A. M. Rollins, “Ultrahigh-speed optical coherence tomography imaging and visualization of the embryonic avian heart using a buffered Fourier Domain Mode Locked laser,” Opt Express 15, 6251–6267, (2007) [CrossRef] [PubMed] | |
D. C. Adler, Y. Chen, R. Huber, J. Schmitt, J. Connolly, and J. G. Fujimoto, “Three-dimensional endomicroscopy using optical coherence tomography,” Nature Photon. 1, 709–716, (2007) [CrossRef] | |
W. Y. Oh, S. H. Yun, G. J. Tearney, and B. E. Bouma, “Wide tuning range wavelength-swept laser with two semiconductor optical amplifiers,” IEEE Photon. Technol. Lett. 17, 678–680, (2005) [CrossRef] | |
J. Zhang, Q. Wang, B. Rao, and Z. Chen, “Swept laser source at 1 mm for Fourier domain optical coherence tomography,” Appl. Phys. Lett. 89, 073901, (2006) [CrossRef] | |
R. Huber, D. C. Adler, V. J. Srinivasan, and J. G. Fujimoto, “Fourier domain mode locking at 1050 nm for ultra-high-speed optical coherence tomography of human retina at 236,000 axial scans per second,” Opt. Lett. 32, 2049–2051, (2007) [CrossRef] [PubMed] |
OCIS Codes
(110.4500) Imaging systems : Optical coherence tomography
(120.3180) Instrumentation, measurement, and metrology : Interferometry
(140.3510) Lasers and laser optics : Lasers, fiber
(140.3600) Lasers and laser optics : Lasers, tunable
ToC Category:
Lasers and Laser Optics
History
Original Manuscript: December 11, 2007
Revised Manuscript: January 25, 2008
Manuscript Accepted: February 1, 2008
Published: February 11, 2008
Virtual Issues
Vol. 3, Iss. 3 Virtual Journal for Biomedical Optics
Citation
Min Yong Jeon, Jun Zhang, Qiang Wang, and Zhongping Chen, "High-speed and wide bandwidth Fourier domain mode-locked wavelength swept laser with multiple SOAs," Opt. Express 16, 2547-2554 (2008)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-16-4-2547
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References
- D. Huang, E. A. Swanson, C. P. Lin, J. S. Schuman, W. G. Stinson, W. Chang, M. R. Hee, T. Flotte, K. Gregory, C. A. Puliafito, and J. G. Fujimoto, "Optical coherence tomography," Science 254, 178-1181, (1991) [CrossRef]
- C. Kerbage, H. Lim, W. Sun, M. Mujat, and J. F. de Boer, "Large depth-high resolution full 3D imaging of the anterior segments of the eye using high speed optical frequency domain imaging," Opt. Express 15, 7117-7125, (2007) [CrossRef] [PubMed]
- S. Yun, G. Tearney, B. Bouma, B. Park, and J. de Boer, "High-speed spectral-domain optical coherence tomography at 1.3 ?m wavelength," Opt. Express 11, 3598-3604, (2003) [CrossRef] [PubMed]
- W. Y. Oh, B. E. Bouma, N. Iftimia, S. H. Yun, R. Yelin, and G. J. Tearney, "Ultrahigh-resolution full-field optical coherence microscopy using InGaAs camera," Opt Express 14, 726-735, (2006) [CrossRef] [PubMed]
- S. H. Yun, G. Tearney, Johannes de Boer, N. Iftimia, and B. Bouma, "High-speed optical frequency-domain imaging," Opt Express 11, 2953-2963, (2003) [CrossRef] [PubMed]
- J. Zhang, J. S. Nelson, and Z. P. Chen, "Removal of a mirror image and enhancement of the signal-to-noise ratio in Fourier-domain optical coherence tomography using an electro-optic phase modulator," Opt. Lett. 30, 147-149, (2005) [CrossRef] [PubMed]
- S. H. Yun, C. Boudoux, G. J. Tearney, and B. E. Bouma, "High-speed wavelength-swept semiconductor laser with a polygon-scanner-based wavelength swept filter," Opt. Lett. 28, 1981-1983, (2003) [CrossRef] [PubMed]
- R. Huber, M. Wojtkowski, K. Taira, J. G. Fujimoto, and K. Hsu, "Amplified, frequency swept lasers for frequency domain reflectometry and OCT imaging: design and scaling principles," Opt. Express 13, 3513-3518, (2005) [CrossRef] [PubMed]
- R. Huber, M. Wojtkowski, and J. G. Fujimoto, "Fourier domain mode locking (FDML): A new laser operating regime and applications for optical coherence tomography," Opt Express 14, 3225-3237, (2006) [CrossRef] [PubMed]
- R. Huber, D. C. Adler, and J. G. Fujimoto, "Buffered Fourier domain mode locking: unidirectional swept laser sources for optical coherence tomography imaging at 370,000 lines/s," Opt. Lett. 31, 2975-2977, (2006) [CrossRef] [PubMed]
- D. C. Adler, R. Huber, and J. G. Fujimoto, "Phase-sensitive optical coherence tomography at up to 370,000 lines per second using buffered Fourier domain mode-locked lasers," Opt. Lett. 32, 626-628, (2007) [CrossRef] [PubMed]
- M. W. Jenkins, D. C. Adler, M. Gargesha, R. Huber, F. Rothenberg, J. Belding, M. Watanabe, D. L. Wilson, J. G. Fujimoto, and A. M. Rollins, "Ultrahigh-speed optical coherence tomography imaging and visualization of the embryonic avian heart using a buffered Fourier Domain Mode Locked laser," Opt Express 15, 6251-6267, (2007) [CrossRef] [PubMed]
- D. C. Adler, Y. Chen, R. Huber, J. Schmitt, J. Connolly, and J. G. Fujimoto, "Three-dimensional endomicroscopy using optical coherence tomography," Nature Photon. 1, 709-716, (2007) [CrossRef]
- W. Y. Oh, S. H. Yun, G. J. Tearney, and B. E. Bouma, "Wide tuning range wavelength-swept laser with two semiconductor optical amplifiers," IEEE Photon. Technol. Lett. 17, 678-680, (2005) [CrossRef]
- J. Zhang, Q. Wang, B. Rao, and Z. Chen, "Swept laser source at 1 mm for Fourier domain optical coherence tomography," Appl. Phys. Lett. 89, 073901, (2006) [CrossRef]
- R. Huber, D. C. Adler, V. J. Srinivasan, and J. G. Fujimoto, "Fourier domain mode locking at 1050 nm for ultra-high-speed optical coherence tomography of human retina at 236,000 axial scans per second," Opt. Lett. 32, 2049-2051, (2007) [CrossRef] [PubMed]
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