Journal of Electronic Materials

, Volume 44, Issue 5, pp 1361–1366 | Cite as

Improving Metal-Oxide-Metal (MOM) Diode Performance Via the Optimization of the Oxide Layer

  • Linzi E. Dodd
  • Samantha A. Shenton
  • Andrew J. Gallant
  • David Wood
Article

Abstract

Small area metal-oxide-metal (MOM) diodes are being investigated in many research groups for the detection of THz frequency radiation. In order to create a high-speed rectifying device, the central oxide layer of the MOM structure must be thin and have known physical characteristics. The thickness, structure and uniformity of the oxide can be controlled during the fabrication process. In the work presented here, the effects of both oxygen plasma concentration and annealing temperature during fabrication of \({\hbox {Ti}/\hbox {TiO}_{x}/\hbox {Pt}}\) MOM diodes have been explored. It has been found that, by reducing the oxygen gas concentration from previous work, the \({\hbox {TiO}_{x}}\) layer can be more repeatable and uniform. Furthermore, for an anneal temperature up to a threshold temperature in the \({200^{\circ }\hbox {C}}\) to \({250^{\circ }\hbox {C}}\) range, the performance of the diodes is excellent, with a value of zero-bias curvature coefficient (CCZB) that can be up to \({4.6\,\hbox {V}^{-1}}\). For higher temperature treatments, the value of CCZB decreases to a maximum of \({2.0\,\hbox {V}^{-1}}\). Similar trends in AC tests can be seen for voltage and current responsivity values.

Keywords

metal-oxide-metal diodes plasma oxidation ToFSIMS responsivity curvature coefficient 

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References

  1. 1.
    E.C. Kinzel, R.L. Brown, J.C. Ginn, B.A. Lail, B.A. Slovick, and G.D. Boreman, Microw. Opt. Technol. Lett. 55, 489 (2013)Google Scholar
  2. 2.
    E.C. Kinzel, R.L. Brown, J.C. Ginn, B.A. Lail, B.A. Slovick, and G.D. Boreman, Infrared Technol. Appl. XXXIX, vol. 8704 (2013)Google Scholar
  3. 3.
    J.A. Bean, B. Tiwari, G. Szakmany, G.H. Bernstain, P. Fay, and W. Porod, Infrared Phys. Technol. 53, 182 (2010)Google Scholar
  4. 4.
    M. Bareiß, A. Hochmeister, G. Jegert, U. Zschieschang, H. Klauk, R. Huber, D. Grundler, W. Porod, B. Fabel, G. Scarpa, and P. Lugli, J. Appl. Phys. 110 (2012)Google Scholar
  5. 5.
    J.A. Bean, B. Tiwari, G.H. Bernstein, P. Fay, and W. Porod, J. Vac. Sci. Technol. B 27, 11 (2009)Google Scholar
  6. 6.
    M. Bareiß, D. Kälblein, C. Jirauschek, A. Exner, I. Pavlichenko, B. Lotsch, U. Zschieschang, H. Klauk, G. Scarpa, B. Fabel, W. Porod, and P. Lugli, Appl. Phys. Lett. 101 (2012)Google Scholar
  7. 7.
    B.M. Kale, Opt. Eng. 24, 267 (1985)Google Scholar
  8. 8.
    L.E. Dodd, A.J. Gallant, and D. Wood, IET Micro Nano Lett. 8, 476 (2013)Google Scholar
  9. 9.
    G. Droulers, A. Beaumont, J. Beauvais, and D. Drouin, J. Vac. Sci. Technol. B 29 (2011)Google Scholar
  10. 10.
    J.A. Bean, A. Weeks, and G.D. Boreman, IEEE J. Quant. Elec. 47, 126 (2011)Google Scholar
  11. 11.
    S. Krishnan, Y. Emirov, S. Bhansali, E. Stefanakos, and Y. Goswami, Thin Solid Films 518, 3367 (2009)Google Scholar
  12. 12.
    L.E. Dodd, A.J. Gallant, and D. Wood, IET Micro Nano Lett. 9, 437 (2014)Google Scholar
  13. 13.
    L.E. Dodd, A.J. Gallant, and D. Wood, Optimizing MOM diode performance via the oxidation technique. Proc. IEEE Sens. 2011, 176–179 (2011)Google Scholar

Copyright information

© The Minerals, Metals & Materials Society 2015

Authors and Affiliations

  • Linzi E. Dodd
    • 1
  • Samantha A. Shenton
    • 1
  • Andrew J. Gallant
    • 1
  • David Wood
    • 1
  1. 1.School of Engineering and Computing SciencesDurham UniversityDurhamUK

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