English

Soliton dynamics in the multiphoton plasma regime

Optics 2013-01-25 v1

Abstract

Solitary waves have consistently captured the imagination of scientists, ranging from fundamental breakthroughs in spectroscopy and metrology enabled by supercontinuum light, to gap solitons for dispersionless slow-light, and discrete spatial solitons in lattices, amongst others. Recent progress in strong-field atomic physics include impressive demonstrations of attosecond pulses and high-harmonic generation via photoionization of free-electrons in gases at extreme intensities of 1014 Wcm2. Here we report the first phase-resolved observations of femtosecond optical solitons in a semiconductor microchip, with multiphoton ionization at picojoule energies and 1010 Wcm2 intensities. The dramatic nonlinearity leads to picojoule observations of free-electron-induced blue-shift at 1016 cm3 carrier densities and self-chirped femtosecond soliton acceleration. Furthermore, we evidence the time-gated dynamics of soliton splitting on-chip, and the suppression of soliton recurrence due to fast free-electron dynamics. These observations in the highly dispersive slow-light media reveal a rich set of physics governing ultralow-power nonlinear photon-plasma dynamics.

Keywords

Cite

@article{arxiv.1301.5748,
  title  = {Soliton dynamics in the multiphoton plasma regime},
  author = {Chad A. Husko and Sylvain Combrie and Pierre Colman and Jiangjun Zheng and Alfredo De Rossi and Chee Wei Wong},
  journal= {arXiv preprint arXiv:1301.5748},
  year   = {2013}
}

Comments

14 pages (main body and supplement), 11 figures - earlier draft; http://www.nature.com/srep/2013/130122/srep01100/full/srep01100.html

R2 v1 2026-06-21T23:14:39.254Z