DocumentCode :
1194356
Title :
Analysis of energy process window of laser metal pad cut link structure
Author :
Lee, Joohan ; Bernstein, Joseph B.
Author_Institution :
GSI Lumonics, Wilmington, MA, USA
Volume :
16
Issue :
2
fYear :
2003
fDate :
5/1/2003 12:00:00 AM
Firstpage :
299
Lastpage :
306
Abstract :
Since laser metal cut processing has become a standard technology in the industry, the improvement of cutting metal lines has been an important issue. There has been extensive research focused on the optimization of metal cut structure as well as laser parameters. In this work, a metal pad cut link (or fuse) structure has been studied in comparison with a conventional metal linear cut structure through experimental observations and verified using three-dimensional finite-element modeling. The novel proposed structure improves the laser cut processing reliability. The finite-element analysis shows that the temperature in the aluminum line of the pad cut structure throughout the laser pulse duration is higher than that of the linear cut structure due to the reduced heat diffusion along the line. Consequently, the upper-corner cracking initiates faster and the lower-corner stress of pad structure develops faster at first, but starts to release right after earlier upper-corner cracking. This faster upper-corner cracking and delayed lower-corner cracking indicate a low chance for lower-corner cracking as well as possible low-power processing. Therefore, the pad cut structures have been shown to have a wider relative cut energy process window, which indicates higher reliability of laser processing and may result in higher density laser fuses.
Keywords :
cutting; electric fuses; finite element analysis; integrated circuit interconnections; integrated circuit reliability; integrated circuit yield; laser materials processing; semiconductor process modelling; thermal diffusion; thermal stress cracking; Al; Al line temperature; bulge fuse; energy process window; fuse structure; heat diffusion; interconnect; laser cut processing reliability; laser metal cut processing; laser metal pad cut link structure; laser pulse duration; lower-corner stress; three-dimensional finite-element modeling; upper-corner cracking; yield enhancement; Aluminum; Delay; Finite element methods; Fuses; Laser beam cutting; Laser modes; Metals industry; Optical pulses; Stress; Temperature;
fLanguage :
English
Journal_Title :
Semiconductor Manufacturing, IEEE Transactions on
Publisher :
ieee
ISSN :
0894-6507
Type :
jour
DOI :
10.1109/TSM.2003.811889
Filename :
1198043
Link To Document :
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