DocumentCode
2016271
Title
Microanalysis of VLSI interconnect failure modes under short-pulse stress conditions
Author
Banerjee, Kaustav ; Kim, Dae-Yong ; Amerasekera, Ajith ; Chenming He ; Wong, S. Simon ; Goodson, Kenneth E.
Author_Institution
Center for Integrated Syst., Stanford Univ., CA, USA
fYear
2000
fDate
2000
Firstpage
283
Lastpage
288
Abstract
This work presents a detailed microanalysis of interconnect failure mechanisms under short-pulse stress conditions arising during peak current and electrostatic discharge (ESD) events. TEM and SEM analysis have been used to show that passivated AlCu lines can undergo localized melting and voiding under sub-critical current pulses that heat the lines well past their melting point but below a critical failure temperature causing open circuit failures. It is observed that the damage caused by the melting and voiding remains latent since no physical evidence of damage can be detected under optical microscope and no change in the electrical resistance of these lines can be measured. The voids observed under TEM and SEM result from electromigration under very high current densities and high temperature. TEM diffraction patterns confirm that the molten regions exhibit smaller grain sizes, which are introduced as a result of rapid resolidification from a molten state. A thermomechanical model has also been formulated to account for the open circuit failure mode at which the passivation layers are fractured
Keywords
VLSI; electromigration; electrostatic discharge; failure analysis; integrated circuit interconnections; integrated circuit reliability; scanning electron microscopy; transmission electron microscopy; AlCu; AlCu line; SEM; TEM; VLSI interconnect; current pulse; electrical resistance; electromigration; electrostatic discharge; grain size; latent damage; melting; microanalysis; open circuit failure; optical microscopy; passivation; short-pulse stress; thermomechanical model; voiding; Electrostatic discharge; Failure analysis; Integrated circuit interconnections; Optical microscopy; Optical pulses; Pulse circuits; Scanning electron microscopy; Stress; Temperature; Very large scale integration;
fLanguage
English
Publisher
ieee
Conference_Titel
Reliability Physics Symposium, 2000. Proceedings. 38th Annual 2000 IEEE International
Conference_Location
San Jose, CA
Print_ISBN
0-7803-5860-0
Type
conf
DOI
10.1109/RELPHY.2000.843928
Filename
843928
Link To Document