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Science 12 June 1992:
Vol. 256. no. 5063, pp. 1537 - 1539
DOI: 10.1126/science.256.5063.1537

Articles

Slow Crack Growth in Single-Crystal Silicon

J. A. Connally 1 and S. B. Brown 1

1 Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139

Time-dependent crack growth has been measured on a precracked, single-crystal silicon cantilever beam 75 micrometers long that was excited at resonance. Growth of the precrack changes the resonant frequency of the beam, which is correlated to crack length. The measured steady-state crack growth rate was as slow as 2.9 x 10–13 meter per second, although the apparatus can measure crack growth rates as low as 10–15 meter per second. It is postulated that static fatigue of the native surface silica layer is the mechanism for crack growth. These experiments demonstrate the possibility of rate-dependent failure of silicon devices and the applicability of linear elastic fracture mechanics to small-scale micromechanical devices. The results indicate that slow crack growth must therefore be considered when evaluating the reliability of thin-film silicon structures.

Submitted on February 28, 1992
Accepted on April 17, 1992


THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
Size and Frequency of Defects in Silicon MEMS.
D. A. Lavan, B. L. Boyce, and T. E. Buchheit (2003)
International Journal of Damage Mechanics 12, 357-363
   Abstract »    PDF »
Fatigue Failure in Polysilicon Not Due to Simple Stress Corrosion Cracking.
H. Kahn, R. Ballarini, J. J. Bellante, and A. H. Heuer (2002)
Science 298, 1215-1218
   Abstract »    Full Text »    PDF »



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Science. ISSN 0036-8075 (print), 1095-9203 (online)