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Effect of multi-layered bottom electrodes on the orientation of strontium-doped lead zirconate titanate thin films

journal contribution
posted on 2024-11-01, 05:20 authored by Madhu Bhaskaran, Sharath Sriram, D R G Mitchell, K.T. Short, Anthony HollandAnthony Holland
This article discusses the results from X-ray diffraction (XRD) analysis of piezoelectric strontium-doped lead zirconate titanate (PSZT) thin films deposited on multi-layer coatings on silicon. The films were deposited by RF magnetron sputtering on a metal coated substrate. The aim was to exploit the pronounced piezoelectric effect that is theoretically expected normal to the substrate. This work highlighted the influence that the bottom electrode architecture exerts on the final crystalline orientation of the deposited thin films. A number of bottom electrode architectures were used, with the uppermost metal layer on which PSZT was deposited being gold or platinum. The XRD analysis revealed that the unit cell of the PSZT thin films deposited on gold and on platinum were deformed, relative to expected unit cell dimensions. Experimental results have been used to estimate the unit cell parameters. The XRD results were then indexed based on these unit cell parameters. The choice and the thickness of the intermediate adhesion layers influenced the relative intensity, and in some cases, the presence of perovskite peaks. In some cases, undesirable reactions between the bottom electrode layers were observed, and layer architectures to overcome these reactions are also discussed.

History

Journal

Thin Solid Films

Volume

516

Issue

22

Start page

8101

End page

8105

Total pages

5

Publisher

Elsevier

Place published

Switzerland

Language

English

Copyright

Copyright © 2008 Elsevier B.V. All rights reserved.

Former Identifier

2006008180

Esploro creation date

2020-06-22

Fedora creation date

2009-07-17

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