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Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems

Publication ,  Journal Article
Gall, K; Hulse, M; Dunn, ML; Finch, D; George, SM; Corff, BA
Published in: Journal of Materials Research
January 1, 2003

We present results on the thermomechanical behavior of bare and nanocoated gold/polysilicon (Au/Si) bilayer cantilever beams for microelectromechanical system applications. The cantilever beams have comparable thicknesses of the Au and Si layers and thus experience significant out-of-plane curvature due to a temperature change. The experiments focus on the inelastic behavior of the bilayer beams due to thermal holding and thermal cycling. In uncoated Au/Si beams, thermal holding directly after release or thermal cycling both lead to a curvature decrease as a function of time or cycle number, respectively. The drop in curvature during thermal cycling or thermal holding in uncoated beams was not accompanied by a change in the slope of the thermoelastic curvature-temperature relationship. The absolute change in curvature depends on the temperature and the holding time. When holding or cycling to a temperature of 175°C, the curvature change in uncoated beams is minimal for hold times up to 4500 min or 15,000 cycles. When holding or cycling to temperatures of 200 or 225°C, the curvature in uncoated beams drops by a factor of three for hold times up to 4500 min or 15,000 cycles. The surface structure induced by long-term holding of uncoated beams shows grooving at the grain boundaries while the surface structure induced by cycling of uncoated beams shows consolidation of the grain boundaries. The Au/Si beams with a conformal 40-nm atomic layer deposition Al2O3 coating show a considerably different response compared to identical Au/Si bare beams subjected to the same thermal histories. The coating completely suppresses decreases in curvature when the beams are held at 225°C for 4500 min. On the contrary, the coating does not always suppress thermal ratcheting when the beam is cycled from a low temperature to 225°C. In the coated beams, the drop in curvature due to thermal cycling was accompanied by a change in the thermoelastic slope of the curvature-temperature relationship. Negligible microstructural changes were detected on the Al2O3-coated Au surface after holding or cycling. The results are discussed in light of potential deformation mechanisms and a simple analysis linking the mismatch strain between the layers to the curvature in the beams.

Duke Scholars

Published In

Journal of Materials Research

DOI

ISSN

0884-2914

Publication Date

January 1, 2003

Volume

18

Issue

7

Start / End Page

1575 / 1587

Related Subject Headings

  • Materials
  • 5104 Condensed matter physics
  • 4017 Mechanical engineering
  • 4016 Materials engineering
  • 0913 Mechanical Engineering
  • 0912 Materials Engineering
  • 0204 Condensed Matter Physics
 

Citation

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ICMJE
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Gall, K., Hulse, M., Dunn, M. L., Finch, D., George, S. M., & Corff, B. A. (2003). Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems. Journal of Materials Research, 18(7), 1575–1587. https://doi.org/10.1557/JMR.2003.0217
Gall, K., M. Hulse, M. L. Dunn, D. Finch, S. M. George, and B. A. Corff. “Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems.” Journal of Materials Research 18, no. 7 (January 1, 2003): 1575–87. https://doi.org/10.1557/JMR.2003.0217.
Gall K, Hulse M, Dunn ML, Finch D, George SM, Corff BA. Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems. Journal of Materials Research. 2003 Jan 1;18(7):1575–87.
Gall, K., et al. “Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems.” Journal of Materials Research, vol. 18, no. 7, Jan. 2003, pp. 1575–87. Scopus, doi:10.1557/JMR.2003.0217.
Gall K, Hulse M, Dunn ML, Finch D, George SM, Corff BA. Thermomechanical response of bare and Al2O3-nanocoated Au/Si bilayer beams for microelectromechanical systems. Journal of Materials Research. 2003 Jan 1;18(7):1575–1587.
Journal cover image

Published In

Journal of Materials Research

DOI

ISSN

0884-2914

Publication Date

January 1, 2003

Volume

18

Issue

7

Start / End Page

1575 / 1587

Related Subject Headings

  • Materials
  • 5104 Condensed matter physics
  • 4017 Mechanical engineering
  • 4016 Materials engineering
  • 0913 Mechanical Engineering
  • 0912 Materials Engineering
  • 0204 Condensed Matter Physics