Volumetric Modification of Transparent Materials with Two-Color Laser Irradiation: Insight from Numerical Modeling

被引:0
作者
Zhukov, Vladimir P. [1 ,2 ,3 ]
Bulgakova, Nadezhda M. [1 ]
机构
[1] Inst Phys ASCR, HiLASE Ctr, Dolni Brezany 25241, Czech Republic
[2] Fed Res Ctr Informat & Computat Technol, Novosibirsk 630090, Russia
[3] Novosibirsk State Tech Univ, Novosibirsk 630073, Russia
关键词
ultrashort laser pulses; material modification; bi-color irradiation; laser energy coupling; numerical simulations; Maxwell's equations; FEMTOSECOND LASER; ABLATION; PULSE; MICROFABRICATION; PICOSECOND; IONIZATION;
D O I
10.3390/ma17081763
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Traditionally, single-color laser beams are used for material processing and modifications of optical, mechanical, conductive, and thermal properties of different materials. So far, there are a limited number of studies about the dual-wavelength laser irradiation of materials, which, however, indicate a strong enhancement in laser energy coupling to solid targets. Here, a theoretical study is reported that aimed at exploring the volumetric excitation of fused silica with dual-wavelength (800 nm and 400 nm) ultrashort laser pulses focused on the material's bulk. Numerical simulations are based on Maxwell's equations, accounting for the generation of conduction electrons, their hydrodynamic motion in the laser field, and trapping into an excitonic state. It is shown that, by properly choosing the energies of the two laser harmonics successively coupling with the material, it is possible to strongly enhance the laser energy absorption as compared to the pulses of a single wavelength with the same total energy. Laser energy absorption strongly depends on the sequence of applied wavelengths, so that the shorter wavelength pre-irradiation can yield a dramatic effect on laser excitation by the following longer-wavelength pulse. The predictions of this study can open a new route for enhancing and controlling the highly localized absorption of laser energy inside transparent materials for optoelectronic and photonic applications.
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页数:10
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