Fully microscopic analysis of laser-driven finite plasmas using the example of clusters

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Abstract

We discuss a microscopic particle-in-cell (MicPIC) approach that allows bridging of the microscopic and macroscopic realms of laser-driven plasma physics. The simultaneous resolution of collisions and electromagnetic field propagation in MicPIC enables the investigation of processes that have been inaccessible to rigorous numerical scrutiny so far. This is illustrated by the two main findings of our analysis of pre-ionized, resonantly laser-driven clusters, which can be realized experimentally in pump-probe experiments. In the linear response regime, MicPIC data are used to extract the individual microscopic contributions to the dielectric cluster response function, such as surface and bulk collision frequencies.We demonstrate that the competition between surface collisions and radiation damping is responsible for the maximum in the sizedependent lifetime of the Mie surface plasmon. The capacity to determine the microscopic underpinning of optical material parameters opens new avenues for modeling nano-plasmonics and nano-photonics systems. In the non-perturbative regime, we analyze the formation and evolution of recollision-induced plasma waves in laser-driven clusters. The resulting dynamics of the electron density and local field hot spots opens a new research direction for the field of attosecond science. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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Peltz, C., Varin, C., Brabec, T., & Fennel, T. (2012). Fully microscopic analysis of laser-driven finite plasmas using the example of clusters. New Journal of Physics, 14. https://doi.org/10.1088/1367-2630/14/6/065011

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