Numerical analysis of crater formation and ablation depth in thin silicon films heated by ultrashort pulse train lasers

Citations

WEB OF SCIENCE

7
Citations

SCOPUS

9

초록

This study numerically investigates the optical and heat transfer characteristics of thin silicon films irradiated by ultrashort (shorter than 10 ps) pulse train lasers. The one-dimensional two-temperature model (1DTTM) is extended to the two-dimensional (2DTTM) model for estimation of crater formation. In addition, the wave interference effects on the optical and energy transfer characteristics are considered to predict accurately the energy absorption rates in thin silicon films irradiated by picosecond-to-femtosecond pulse train lasers. Unlike bulk silicon, a significant change in energy absorption is found to occur in thin silicon films with the variation of film thickness due to the wave interference. The spatial distributions of energy carrier and lattice temperature show quite a different tendency at different pulse durations as well as the number of pulses because of significant changes in the optical and thermal properties. The predicted crater shapes and the ablation depths by 2DTTM are also presented.

키워드

ultrashort pulse train lasers; wave interference; ablation; crater; heat transfer; MULTILAYER METALS; PLASMAS; MODEL
제목
Numerical analysis of crater formation and ablation depth in thin silicon films heated by ultrashort pulse train lasers
저자
Sim, Hyung Sub; Lee, Seong Hyuk; Lee, Joon Sik
DOI
10.1007/BF03177440
발행일
2007-11
유형
Article; Proceedings Paper
저널명
Journal of Mechanical Science and Technology
권
21
호
11
페이지
1847 ~ 1854