Page 401 - Phase Space Optics Fundamentals and Applications
P. 401
382 Chapter Eleven
63. M. Beck, M. G. Raymer, I. A. Walmsley, and V. Wong, “Chronocyclic tomogra-
phy for measuring the amplitude and phase structure of optical pulses,” Opt.
Lett. 18: 2041–2043 (1993).
64. C. Dorrer and I. Kang, “Complete temporal characterization of short optical
pulses by simplified chronocyclic tomography,” Opt. Lett. 28: 1481–1483 (2003).
65. T. Alieva, M. J. Bastiaans, and L. Stankovic, “Signal reconstruction from two
close fractional Fourier power spectra,” IEEE Trans. Signal Process. 51: 112–123
(2003).
66. C. Dorrer, “Characterization of nonlinear phase shifts by use of the temporal
transport-of-intensity equation,” Opt. Lett. 30: 3237–3239 (2005).
67. S. C. Woods and A. H. Greenaway, “Wavefront sensing by use of a Green’s
function solution to the intensity transport equation,” J. Opt. Soc. Am. A 20:
508–512 (2003).
68. L. Lepetit, G. Ch´eriaux, and M. Joffre, “Linear techniques of phase measure-
ment by femtosecond spectral interferometry for applications in spectroscopy,”
J. Opt. Soc. Am. B 12: 2467–2474 (1995).
69. D. N. Fittinghoff, J. L. Bowie, J. N. Sweetser, R. T. Jennings, M. A. Krumb¨ugel,
K. W. Delong, R. Trebino, et al., “Measurement of the intensity and phase of
ultraweak, ultrashort laser pulses,” Opt. Lett. 21: 884–886 (1996).
70. C. Dorrer, “Complete characterization of periodic optical sources by use of
sampled test-plus-reference interferometry,” Opt. Lett. 30: 2022–2024 (2005).
71. K. C. Chu, J. P. Heritage, R. S. Grant, K. X. Liu, A. Dienes, W. E. White, and A.
Sullivan, “Direct measurement of the spectral phase of femtosecond pulses,”
Opt. Lett. 20: 906 (1995).
72. K. C. Chu, J. P. Heritage, R. S. Grant, and W. E. White, “Temporal interferometric
measurement of femtosecond spectral phase,” Opt. Lett. 21: 1842–1844 (1996).
73. R. M. Fortenberry and V. Wayne, “Apparatus for characterizing short optical
pulses,” U.S. Patent 5,684,586, 1997.
74. C. Dorrer, “Chromatic dispersion measurement using direct instantaneous fre-
quency measurement,” Opt. Lett. 29: 204–206 (2004).
75. S. Prein, S. A. Diddams, and J.-C. Diels, “Complete characterization of fem-
tosecond pulses using an all-electronic detector,” Opt. Comm. 123: 567–573
(1996).
76. V. Messager, F. Louradour, C. Froehly, and A. Barth´el´emy, “Coherent measure-
ment of short laser pulses based on spectral interferometry resolved in time,”
Opt. Lett. 28: 743–745 (2003).
77. P. Kockaert, M. Peeters, S. Coen, P. Emplit, M. Haelterman, and O. Deparis,
“Simple amplitude and phase measuring technique for ultrahigh-repetition-
rate lasers,” IEEE Photon. Technol. Lett. 12: 187–189 (2000).
78. J. E. Rothenberg and D. Grischkowsky, “Measurement of optical phase with
subpicosecondresolutionbytime-domaininterferometry,” Opt.Lett. 12:99–101
(1987).
79. V. A. Zubov and T. I. Kuznetsova, “Solution of the phase problem for time-
dependent optical signals by an interference system,” Sov. J. Quantum Electron.
21: 1285–1286 (1991).
80. V. Wong and I. A. Walmsley, “Analysis of ultrashort pulse-shape measurement
using linear interferometers,” Opt. Lett. 19: 287–289 (1994).
81. M. Takeda, H. Ina, and S. Kobayashi, “Fourier-transform method of fringe-
pattern analysis for computer-based topography and interferometry,” J. Opt.
Soc. Am. A 72: 156–160 (1982).
82. C. Dorrer and I. Kang, “Highly sensitive direct femtosecond pulse characteriza-
tion using electro-optic spectral shearing interferometry,” Opt. Lett. 28: 477–479
(2003).
83. J. Bromage, C. Dorrer, I. A. Begishev, N. G. Usechak, and J. D. Zuegel,
“Highly sensitive, single-shot characterization for pulse widths from 0.4 to
85 ps using electro-optic shearing interferometry,” Opt. Lett. 31: 3523–3525
(2006).