Xia, L.; Van der Slot, P. J. M.; Timmerkamp, M.; Fallnich, C., Boller, K.-J.
Forschungsartikel (Zeitschrift) | Peer reviewedWe show that using strongly coupled dual-core waveguides for supercontinuum generation shifts the wavelength of the high-frequency dispersive waves towards shorter wavelengths, as compared to generation in a single-core waveguide having the same core dimensions. In a demonstration experiment, we launch ultrashort infrared pump pulses at 1-μm wavelength (285-THz frequency) into silicon nitride waveguides, where soliton formation and fission leads to generation of dispersive waves in the visible range. Efficient input coupling and controlled excitation of the two lowest order supermodes of the dual-core waveguide is provided with adiabatic tapers and a dual-prong input structure. For the dual-core waveguide, the short-wavelength dispersive wave is located at 540 nm (green, 555 THz), which is blue-shifted by 80 nm (70 THz) compared to that of the single-core waveguide. Simultaneously, the dual-core waveguide generates broadband radiation spanning from the blue into the UV range, reaching to below 350 nm (above 855 THz), with typically a spectral density 25 dB below that of the dispersive wave. The broadband component can be attributed to third harmonic generation and is not observed in single-core supercontinuum generation. Numerical modeling shows good agreement with experimental measurements. The demonstrated dual-core approach and dedicated input coupling appear to hold promise also for other waveguide structures, independent of specific materials or core dimensions, by providing shorter wavelengths than with the respective single-core waveguide.
| Fallnich, Carsten | Professur für Angewandte Physik (Prof. Fallnich) |
| Timmerkamp, Maximilian | Professur für Angewandte Physik (Prof. Fallnich) |