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JOURNALS // Fizika i Tekhnika Poluprovodnikov // Archive

Fizika i Tekhnika Poluprovodnikov, 2016 Volume 50, Issue 5, Pages 706–710 (Mi phts6477)

This article is cited in 4 papers

Manufacturing, processing, testing of materials and structures

Role of the heat accumulation effect in the multipulse modes of the femtosecond laser microstructuring of silicon

I. V. Guk, G. D. Shandybina, E. B. Yakovlev

St. Petersburg National Research University of Information Technologies, Mechanics and Optics

Abstract: The results of quantitative evaluation of the heat accumulation effect during the femtosecond laser microstructuring of the surface of silicon are presented for discussion. In the calculations, the numerical–analytical method is used, in which the dynamics of electronic processes and lattice heating are simulated by the numerical method, and the cooling stage is described on the basis of an analytical solution. The effect of multipulse irradiation on the surface temperature is studied: in the electronic subsystem, as the dependence of the absorbance on the excited carrier density and the dependence of the absorbance on the electron-gas temperature; in the lattice subsystem, as the variation in the absorbance from pulse to pulse. It was shown that, in the low-frequency pulse-repetition mode characteristic of the femtosecond microstructuring of silicon, the heat accumulation effect is controlled not by the residual surface temperature by the time of the next pulse arrival, which corresponds to conventional concepts, but by an increase in the maximum temperature from pulse to pulse, from which cooling begins. The accumulation of the residual temperature of the surface can affect the microstructuring process during irradiation near the evaporation threshold or with increasing pulse-repetition rate.

Keywords: Pulse Number, Accumulation Effect, Cooling Stage, Heat Accumulation, Residual Temperature.

Received: 26.11.2014
Accepted: 21.10.2015


 English version:
Semiconductors, 2016, 50:5, 694–698

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