DocumentCode
750787
Title
Design of Two-Dimensional Optical Alignment Signals Robust to Diffractive Effects
Author
Saez-Landete, Jose ; Salcedo-Sanz, Sancho ; Cruz-Roldan, Fernando ; Amo-Lopez, Pedro ; Blanco-Velasco, Manuel
Author_Institution
Dept. de Teor. de la Serial y Comun., Univ. de Alcala, Madrid
Volume
26
Issue
12
fYear
2008
fDate
6/15/2008 12:00:00 AM
Firstpage
1702
Lastpage
1707
Abstract
Mask alignment is one of the most critical processes in photolithography. Prior to the shadow projection, the alignment between the lithographic mask and the silicon wafer is needed. In contact and proximity photolithography, a method to achieve the alignment with submicron or even nanometer resolution consists of superimposing two identical 2-D zero reference codes and registering the optical output signal. In order to increase the resolution of the system, the size of the code must be reduced and the diffractive effects become strong. The signal is then degraded and the precision of the alignment is reduced. In this paper, the effect of the diffraction in 2-D codes is analyzed, the degradation of the signal is characterized and its effect is modelled by means of a simple and fast computing parameter. Finally, we propose a genetic algorithm to optimize this parameter and design 2-D codes robust to diffractive effects. We propose the use of these codes to increase the resolution of alignment systems.
Keywords
diffraction gratings; genetic algorithms; masks; optical fabrication; photolithography; position measurement; proximity effect (lithography); silicon; 2-D codes; diffractive effects; genetic algorithm; mask alignment; optical device fabrication; optical output signal; position measurement; proximity photolithography; radial diffraction gratings; shadow projection; signal degradation; silicon wafer; two-dimensional optical alignment signals; Degradation; Genetic algorithms; Lithography; Optical design; Optical diffraction; Robustness; Signal analysis; Signal design; Signal resolution; Silicon; Gratings; optical device fabrication; optical position measurement; optical transducers; optimization methods; position measurement;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2008.919428
Filename
4542970
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