AI Article Synopsis

  • Coherent XUV sources operating at MHz repetition rates could be used for advanced applications like high-precision spectroscopy and real-time measurements of electron dynamics on nanostructures.
  • Through theoretical investigations, the research explores using enhanced plasmonic fields in gold nanoparticle arrays to generate high-harmonic XUV radiation.
  • Optimization of ultrashort laser pulse chirp can facilitate the generation of single attosecond pulses, while considering local field inhomogeneity significantly enhances the cutoff energy of the produced high-harmonic spectrum.

Article Abstract

Coherent XUV sources, which may operate at MHz repetition rate, could find applications in high-precision spectroscopy and for spatio-time-resolved measurements of collective electron dynamics on nanostructured surfaces. We theoretically investigate utilizing the enhanced plasmonic fields in an ordered array of gold nanoparticles for the generation of high-harmonic, extreme-ultraviolet (XUV) radiation. By optimization of the chirp of ultrashort laser pulses incident on the array, our simulations indicate a potential route towards the temporal shaping of the plasmonic near-field and, in turn, the generation of single attosecond pulses. The inherent effects of inhomogeneity of the local fields on the high-harmonic generation are analyzed and discussed. While taking the inhomogeneity into account does not affect the optimal chirp for the generation of a single attosecond pulse, the cut-off energy of the high-harmonic spectrum is enhanced by about a factor of two.

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Source
http://dx.doi.org/10.1364/OE.21.002195DOI Listing

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