Estimating the plasmonic field enhancement using high-order harmonic generation: The role of inhomogeneity of the fields
arXiv:1208.2173 · doi:10.1080/09500340.2012.735267
Abstract
In strong field laser physics it is a common practice to use the high-order harmonic cutoff to estimate the laser intensity of the pulse that generates the harmonic radiation. Based on the semiclassical arguments it is possible to find a direct relationship between the maximum value of the photon energy and the laser intensity. This approach is only valid if the electric field driving HHG is spatially homogenous. In laser-matter processes driven by plasmonics fields, the enhanced fields present a spatial dependence that strongly modifies the electron motion and consequently the laser driven phenomena. As a result, this method should be revised in order to more realistically estimate the field. In this work, we demonstrate how the inhomogeneity of the fields will effect this estimation. Furthermore, by employing both quantum mechanical and classical calculations, we show how one can obtain a better estimation for the intensity of the enhanced field in plasmonic nanostructure.
7 pages and 2 figures
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- Simultaneous control of harmonic yield and energy cutoff of high-harmonic generation using seeded plasmonic-enhanced fields
- Signatures of double-electron re-combination in high-order harmonic generation driven by spatially inhomogeneous fields
- Numerical studies of light-matter interaction driven by plasmonic fields: the velocity gauge
- Quasi-phase-matched high harmonic generation in corrugated micrometer-scale waveguides
- Optimal control of photoelectron emission by realistic waveforms