DocumentCode
105950
Title
Control of Material Transport Through Pulse Shape Manipulation—A Development Toward Designer Pulses
Author
Pangovski, Krste ; Sparkes, M. ; Cockburn, A. ; O´Neill, W. ; Peh Siong Teh ; Dejiao Lin ; Richardson, David
Author_Institution
Centre for Ind. Photonics, Univ. of Cambridge, Cambridge, UK
Volume
20
Issue
5
fYear
2014
fDate
Sept.-Oct. 2014
Firstpage
51
Lastpage
63
Abstract
The variety of laser systems available to industrial laser users is growing and the choice of the correct laser for a material target application is often based on an empirical assessment. Industrial master oscillator power amplifier systems with tuneable temporal pulse shapes have now entered the market, providing enormous pulse parameter flexibility in an already crowded parameter space. In this paper, an approach is developed to design interaction parameters based on observations of material responses. Energy and material transport mechanisms are studied using pulsed digital holography, post process analysis techniques and finite-difference modelling to understand the key response mechanisms for a variety of temporal pulse envelopes incident on a silicon 〈1|1|1〉 substrate. The temporal envelope is shown to be the primary control parameter of the source term that determines the subsequent material response and the resulting surface morphology. A double peak energy-bridged temporal pulse shape designed through direct application of holographic imaging data is shown to substantially improve surface quality.
Keywords
finite difference methods; holography; laser tuning; optical pulse shaping; power amplifiers; surface morphology; Si; control parameter; designer pulses; double peak energy-bridged temporal pulse shape; empirical assessment; energy transport; finite-difference modelling; holographic imaging; industrial laser; industrial master oscillator power amplifier systems; interaction parameters; laser systems; material response; material target application; material transport; post process analysis techniques; pulse parameter flexibility; pulsed digital holography; silicon 〈1|1|1〉 substrate; surface morphology; surface quality; temporal pulse envelopes; tuneable temporal pulse shapes; Heating; Imaging; Laser ablation; Laser beams; Materials; Optical surface waves; Surface treatment; Holographic interferometry; holographic recording; laser ablation; laser materials-processing applications; pulsed lasers; silicon;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2014.2302441
Filename
6742663
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