飞秒
激光器
材料科学
吸收(声学)
光学
波长
电离
半导体
原子物理学
光电子学
物理
离子
量子力学
作者
I. B. Bogatyrev,David Grojo,Philippe Delaporte,S. Leyder,M. Sentís,W. Marine,Tatiana Itina
摘要
We present a theoretical model, which describes local energy deposition inside IR-transparent silicon and gallium arsenide with focused 1.3-μm wavelength femtosecond laser pulses. Our work relies on the ionization rate equation and two temperature model (TTM), as we simulate the non-linear propagation of focused femtosecond light pulses by using a 3D finite difference time domain method. We find a strong absorption dependence on the initial free electron density (doping concentration) that evidences the role of avalanche ionization. Despite an influence of Kerr-type self-focusing at intensity required for non-linear absorption, we show the laser energy deposition remains confined when the focus position is moved down to 1-mm below the surface. Our simulation results are in agreement with the degree of control observed in a simple model experiment.
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