Photonics Research, Volume. 7, Issue 11, 1345(2019)
Coherence of bulk-generated supercontinuum
Fig. 1. Evolution of the output pulse intensity and spectral density at the center of the beam as a function of pump pulse energy. (a), (c), (e) Temporal intensity and (b), (d), (f) spectral density. Here (a), (b) correspond to 800 nm, (c), (d) to 1300 nm, and (e), (f) to 2000 nm pump pulses.
Fig. 2. Evolutions of beam radius over propagation distance for pulses with central wavelengths of 800 nm (blue), 1300 nm (green), and 2000 nm (red), having input energies of 0.282 μJ, 0.569 μJ, and 1.175 μJ, respectively.
Fig. 3. (a), (c), (e) Spatiotemporal intensity profiles of the pulses at the exit plane of a crystal and (b), (d), (f) corresponding spatial frequency-resolved spectra. Subplots (a), (b) correspond to 800 nm, (c), (d) to 1300 nm, and (e), (f) to 2000 nm pump wavelengths, having input energies of 0.282 μJ, 0.569 μJ, and 1.175 μJ, respectively.
Fig. 4. Absolute values of normalized degrees of coherence. Spatial degrees of temporal coherence at (a)
Fig. 5. Overall degrees of coherence at the exit plane, plotted as functions of spatial position
Fig. 6. Comparison between the spectral density distributions taken at particular spatial frequencies
Fig. 7. Comparison between the overall degree of coherence as a function of spatial frequency (
Fig. 8. Overall degrees of temporal coherence calculated for pump energies well above the SC generation threshold: 0.31 μJ at 800 nm, 0.65 μJ at 1300 nm, and 1.25 μJ at 2000 nm. The notations are the same as in Fig.
|
Get Citation
Copy Citation Text
Atri Halder, Vytautas Jukna, Matias Koivurova, Audrius Dubietis, Jari Turunen, "Coherence of bulk-generated supercontinuum," Photonics Res. 7, 1345 (2019)
Category: Nonlinear Optics
Received: Jun. 5, 2019
Accepted: Sep. 8, 2019
Published Online: Nov. 1, 2019
The Author Email: Atri Halder (atri.halder@uef.fi)