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arXiv · 1809.02447

Space-filling, multi-fractal, localized thermal spikes in silicon, germanium and zinc oxide

Abstract

The mechanism responsible for the emission of clusters from heavy ion irradiated solids is proposed to be thermal spikes. Collision cascade-based theories describe atomic sputtering but cannot explain the consistently observed experimental evidence for significant cluster emission. Statistical thermodynamic arguments for thermal spikes are employed here for qualitative and quantitative estimation of the thermal spike-induced cluster emission from silicon, germanium and zinc oxide. The evolving cascades and spikes in elemental and molecular semiconducting solids are shown to have fractal characteristics. Power law potential is used to calculate the fractal dimension.The fractal dimension is shown to be dependent upon the exponent of the power law interatomic potential. Each irradiating ion has the probability of initiating a space-filling, multi-fractal thermal spike that may sublime a localized region near the surface by emitting clusters in relative ratios that depend upon the energies of formation of respective surface vacancies.

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Shoaib Ahmad, Muhammad Sabtain Abbas, Muhammad Yousuf, Sumera Javeed, Sumaira Zeeshan, Kashif Yaqub. 2018-09-07. Space-filling, multi-fractal, localized thermal spikes in silicon, germanium and zinc oxide. https://doi.org/10.1140/epjd%2Fe2018-80149-5

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