Meter-scale conditioned hydrodynamic optical-field-ionized plasma channels
Citations Over TimeTop 10% of 2020 papers
Abstract
We demonstrate through experiments and numerical simulations that low-density, low-loss, meter-scale plasma channels can be generated by employing a conditioning laser pulse to ionize the neutral gas collar surrounding a hydrodynamic optical-field-ionized (HOFI) plasma channel. We use particle-in-cell simulations to show that the leading edge of the conditioning pulse ionizes the neutral gas collar to generate a deep, low-loss plasma channel which guides the bulk of the conditioning pulse itself as well as any subsequently injected pulses. In proof-of-principle experiments, we generate conditioned HOFI (CHOFI) waveguides with axial electron densities of n_{e0}≈1×10^{17}cm^{-3} and a matched spot size of 26μm. The power attenuation length of these CHOFI channels was calculated to be L_{att}=(21±3)m, more than two orders of magnitude longer than achieved by HOFI channels. Hydrodynamic and particle-in-cell simulations demonstrate that meter-scale CHOFI waveguides with attenuation lengths exceeding 1 m could be generated with a total laser pulse energy of only 1.2 J per meter of channel. The properties of CHOFI channels are ideally suited to many applications in high-intensity light-matter interactions, including multi-GeV plasma accelerator stages operating at high pulse repetition rates.
Related Papers
- → Hydrodynamic optical-field-ionized plasma channels(2018)86 cited
- → PLASMA DYNAMICS IN ACCELERATOR WITH PLASMA OPENING SWITCH(2019)6 cited
- → Plasma channels for multi-GeV laser-plasma accelerators using discharges in structured gas cells(2009)1 cited
- → laser guiding in plasma channels for high-rep-rate, low-plasma-density LWFAs (Conference Presentation)(2019)
- → Programmable plasma structure generated by the laser-plasma interaction(2020)