| Literature DB >> 15525078 |
Nicholas L Wagner1, Emily A Gibson, Tenio Popmintchev, Ivan P Christov, Margaret M Murnane, Henry C Kapteyn.
Abstract
We present the first demonstration of a new mechanism for temporal compression of ultrashort light pulses that operates at high (i.e., ionizing) intensities. By propagating pulses inside a hollow waveguide filled with low-pressure argon gas, we demonstrate a self-compression from 30 to 13 fs, without the need for any external dispersion compensation. Theoretical models show that 3D spatiotemporal reshaping of the pulse due to a combination of ionization-induced spectral broadening, plasma-induced refraction, and guiding in the hollow waveguide are necessary to explain the compression mechanism.Entities:
Year: 2004 PMID: 15525078 DOI: 10.1103/PhysRevLett.93.173902
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161