Control of ultrafast pulses in hydrogen-filled hollow-core photonic crystal fiber by Raman coherence
arXiv:1703.04543 · doi:10.1103/PhysRevA.97.013814
Abstract
We present the results of an experimental and numerical investigation into temporally non-local coherent interactions between ultrashort pulses, mediated by Raman coherence, in gas-filled kagomé-style hollow-core photonic crystal fiber. A pump pulse first set up the Raman coherence, creating a refractive index grating in the gas that travels at the group velocity of the pump pulse. Varying the arrival time of a second probe pulse allows high degree of control over its evolution as it propagates along the fiber, in particular soliton self-compression and dispersive wave (DW) emission. In the experiments reported, a DW is emitted at ~300 nm, with a central frequency that oscillates with the pump-probe delay. The results demonstrate that strong Raman coherence created in broadband guiding gas-filled kagomé-PCF can be used to control the dynamics of ultrashort probe pulses, even in difficult-to-access spectral regions such as the deep and vacuum ultraviolet.
References in corpus (7)
- Ultrashort filaments of light in weakly-ionized, optically-transparent media
- Coherent control with a short-wavelength Free Electron Laser
- Supercontinuum generation in the vacuum ultraviolet through dispersive-wave and soliton-plasma interaction in noble-gas-filled hollow-core photonic crystal fiber
- Coherent control of plasma dynamics
- Controlled free-induction decay in the extreme ultraviolet
- Angle-resolved photoemission spectroscopy with 9-eV photon-energy pulses generated in a gas-filled hollow-core photonic crystal fiber
- Temporal condensed matter physics in gas-filled photonic crystal fibers
Cited by in corpus (8)
- High-energy pulse self-compression and ultraviolet generation through soliton dynamics in hollow capillary fibres
- Hybrid photonic-crystal fiber
- Noise and spectral stability of deep-UV gas-filled fiber-based supercontinuum sources driven by ultrafast mid-IR pulses
- Highly Efficient Deep UV Generation by Four-Wave Mixing in Gas-Filled Hollow Core Photonic Crystal Fiber
- Deep-UV-enhanced supercontinuum generated in tapered gas-filled photonic crystal fiber
- From Raman frequency combs to supercontinuum generation in nitrogen-filled hollow-core anti-resonant fiber
- Detection of excited state absorption cross-section of porphyrin through cw and femto-second laser pump-probe technique
- Covariance spectroscopy of molecular gases using fs pulse bursts created by modulational instability in gas-filled hollow-core fiber