| Literature DB >> 33579895 |
M Gebhardt1,2, T Heuermann3,4, R Klas3,4, C Liu3,4, A Kirsche3,4, M Lenski3, Z Wang3, C Gaida3,5, J E Antonio-Lopez6, A Schülzgen6, R Amezcua-Correa6, J Rothhardt3,4,7, J Limpert3,4,7.
Abstract
Bright, coherent soft X-ray radiation is essential to a variety of applications in fundamental research and life sciences. To date, a high photon flux in this spectral region can only be delivered by synchrotrons, free-electron lasers or high-order harmonic generation sources, which are driven by kHz-class repetition rate lasers with very high peak powers. Here, we establish a novel route toward powerful and easy-to-use SXR sources by presenting a compact experiment in which nonlinear pulse self-compression to the few-cycle regime is combined with phase-matched high-order harmonic generation in a single, helium-filled antiresonant hollow-core fibre. This enables the first 100 kHz-class repetition rate, table-top soft X-ray source that delivers an application-relevant flux of 2.8 × 106 photon s-1 eV-1 around 300 eV. The fibre integration of temporal pulse self-compression (leading to the formation of the necessary strong-field waveforms) and pressure-controlled phase matching will allow compact, high-repetition-rate laser technology, including commercially available systems, to drive simple and cost-effective, coherent high-flux soft X-ray sources.Entities:
Year: 2021 PMID: 33579895 PMCID: PMC7881106 DOI: 10.1038/s41377-021-00477-x
Source DB: PubMed Journal: Light Sci Appl ISSN: 2047-7538 Impact factor: 17.782