| Literature DB >> 32140217 |
Fanchao Meng1, John M Dudley1.
Abstract
Femtosecond pulses from an ultrafast mode-locked fiber laser can be optimized in real time by combining single-shot spectral measurements with a smart genetic algorithm to actively control and drive the intracavity dynamics.Entities:
Keywords: Fibre lasers; Ultrafast lasers
Year: 2020 PMID: 32140217 PMCID: PMC7044298 DOI: 10.1038/s41377-020-0270-7
Source DB: PubMed Journal: Light Sci Appl ISSN: 2047-7538 Impact factor: 17.782
Fig. 1Schematic of a fiber laser cavity with automatic control.
WDM wavelength division multiplexer, ISO isolator, RF radiofrequency, TPA two-photon absorption, SHG second harmonic generation, DFT dispersive Fourier transform
Comparison of automated mode-locking approaches for ultrafast fiber lasers
| Laser system | Control element(s) | Objective function(s) | Performance notes |
|---|---|---|---|
| C-Band, anomalous GVD[ | Polarization control | TPA signal, polarization state | Wavelength and pulse duration selection |
| C-Band, anomalous and normal GVD[ | Dual polarization control | SHG signal, RF spectral peak | Various pulsed regimes |
| Yb wave breaking free normal GVD[ | SLM spectral filtering | Optical spectrum, autocorrelation | CW peak and pedestal suppression |
| C-band, anomalous GVD[ | Polarization control, pump power control | Compound: Optical spectrum, peak PD signal, RF spectral peak | Suppression of noise bursts and multipulsing |
| Yb ANDi, normal GVD[ | Polarization control | RF spectral peak, optical spectrum | Match to target spectrum, rapid recovery from a perturbation |
| Yb Fig. 8, normal GVD[ | Dual independent pump power control | Compound: Autocorrelation, RF spectral peak. Power. | On-demand spectral, temporal, coherence, and energy characteristics |
| C-Band, anomalous GVD[ | Polarization control | Temporal pulse counting; FFT pulse train analysis | Pulsed regimes reached via a human-like algorithm |
| Work by Pu et al. C-Band, anomalous GVD[ | Polarization control | Real-time spectral measurement using a DFT | Various pulsed regimes, repeatable access to transition dynamics. |
GVD group velocity dispersion, TPA two-photon absorption, SHG second harmonic generation, RF radio frequency, SLM spatial light modulator, PD photodiode, ANDi all normal dispersion, FFT fast Fourier transform, DFT dispersive fourier transform