Biomedical Engineering Reference
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35. B.E. Bouma, G.J. Tearney, I.P. Biliinski, B. Golubovic, J.G. Fujimoto, Self-phase-modulated
Kerr-lens mode-locked Cr: forsterite laser source for optical coherence tomography. Opt. Lett.
21 , 1839-1842 (1996)
36. T.A. Birks, W.J. Wadsworth, P.S.J. Russell, Supercontinuum generation in tapered fibers. Opt.
Lett. 25 , 1415-1417 (2000)
37. A.L. Gaeta, Nonlinear propagation and continuum generation in microstructured optical
fibers. Opt. Lett. 27 , 924-926 (2002)
38. D.L. Marks, A.L. Oldenburg, J.J. Reynolds, S.A. Boppart, Digital algorithm for dispersion
correction in optical coherence tomography for homogeneous and stratified media. Appl. Opt.
42 , 204-217 (2003)
39. A. Unterhuber, B. Povazay, B. Hermann, H. Sattmann, W. Drexler, V. Yakovlev, G. Tempea,
C. Schubert, E.M. Anger, P.K. Ahnelt, M. Stur, J.E. Morgan, A. Cowey, G. Jung, A.S.T.
Le, Compact, low-cost Ti Al 2 O 3 laser for in vivo ultrahigh-resolution optical coherence
tomography. Opt. Lett. 28 , 905-907 (2003)
40. B. Povazay, K. Bizheva, A. Unterhuber, B. Hermann, H. Sattmann, A.F. Fercher, W. Drexler,
A. Apolonski, W.J. Wadsworth, J.C. Knight, P.St.J. Russell, M. Vetterlein, E. Scherzer,
Submicrometer axial resolution optical coherence tomography. Opt. Lett. 27 (20), 1800-1802
(2002)
41. A. Aguirre, N. Nishizawa, J. Fujimoto, W. Seitz, M. Lederer, D. Kopf, Continuum generation
in a novel photonic crystal fiber for ultrahigh resolution optical coherence tomography at
800 nm and 1300 nm. Opt. Express 14 (3), 1145-1160 (2006)
42. H. Wang, A.M. Rollins, Optimization of dual-band continuum light source for ultrahigh-
resolution optical coherence tomography. Appl. Opt. 46 (10), 1787-1794 (2007)
43. P. Cimalla, J. Walther, M. Mehner, M. Cuevas, E. Koch, Simultaneous dual-band optical
coherence tomography in the spectral domain for high resolution in vivo imaging. Opt.
Express 17 , 19486-19500 (2009)
44. F. Sp oler, S. Kray, P. Grychtol, B. Hermes, J. Bornemann, M. F orst, H. Kurz, Simultaneous
dual-band ultra-high resolution optical coherence tomography. Opt. Express 15 (17), 10832-
10841 (2007)
45. S. Kray, F. Sp oler, M. F orst, H. Kurz, High-resolution simultaneous dual-band spectral
domain optical coherence tomography. Opt. Lett. 34 (13), 1970-1972 (2009)
46. S.H. Yun, C. Boudoux, G.J. Tearney, B.E. Bouma, High-speed wavelength-swept semicon-
ductor laser with a polygon-scanner-based wavelength filter. Opt. Lett. 28 (20), 1981-1983
(2003)
47. S. Yun, G. Tearney, J. de Boer, N. Iftimia, B. Bouma, High-speed optical frequency-domain
imaging. Opt. Express 11 (22), 2953-2963 (2003)
48. R. Huber, M. Wojtkowski, J.G. Fujimoto, J.Y. Jiang, A.E. Cable, Three-dimensional and
C-mode OCT imaging with a compact, frequency swept laser source at 1300 nm. Opt. Express
13 (26), 10523-10538 (2005)
49. M.A. Choma, K. Hsu, J.A. Izatt, Swept source optical coherence tomography using an all-
fiber 1300-nm ring laser source. J. Biomed. Opt. 10 , 044009 (2005)
50. R. Huber, M. Wojtkowski, K. Taira, J. Fujimoto, K. Hsu, Amplified, frequency swept lasers
for frequency domain reflectometry and OCT imaging: design and scaling principles. Opt.
Express 13 (9), 3513-3528 (2005)
51. R. Huber, M. Wojtkowski, J.G. Fujimoto, Fourier domain mode locking (FDML): a new laser
operating regime and applications for optical coherence tomography. Opt. Express 14 (8),
3225-3237 (2006)
52. R. Huber, D.C. Adler, 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 (20), 2975-2977 (2006)
53. M.Y. Jeon, J. Zhang, Z. Chen, Characterization of Fourier domain mode-locked wavelength
swept laser for optical coherence tomography imaging. Opt. Express 16 (6), 3727-3737 (2008)
54. G.Y. Liu, A. Mariampillai, B.A. Standish, N.R. Munce, X. Gu, I.A. Vitkin, High power
wavelength linearly swept mode locked fiber laser for OCT imaging. Opt. Express 16 (18),
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