Back to Search Start Over

Non-leaky longitudinal acoustic modes in ScxAl1-xN/sapphire structure for high-temperature sensor applications

Authors :
Omar Elmazria
Natalya F. Naumenko
Thierry Aubert
Jeremy Streque
Florian Bartoli
Philippe Pigeat
Jaafar Ghanbaja
Laboratoire Matériaux Optiques, Photonique et Systèmes (LMOPS)
CentraleSupélec-Université de Lorraine (UL)
Moscow steel and alloys Institute, Russia
Acoustooptics center
Moscow steel and alloys Institute-Moscow steel and alloys Institute
Institut Jean Lamour (IJL)
Université de Lorraine (UL)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Impact N4S
ANR-15-IDEX-0004,LUE,Isite LUE(2015)
Source :
Applied Physics Letters, Applied Physics Letters, American Institute of Physics, 2019, 115 (8), pp.083502. ⟨10.1063/1.5114871⟩
Publication Year :
2019
Publisher :
HAL CCSD, 2019.

Abstract

International audience; Multilayered structures based on wide bandgap nitride piezoelectric thin films are very attractive for high-temperature surface acoustic waves (SAW) sensor applications. In this respect, scandium aluminium nitride (ScAlN) films are of particular interest as they combine enhanced piezoelectric properties and slower acoustic waves velocities when the Sc content steadily increases up to 40%. This property offers the possibility to combine slow ScAlN films on fast substrates like sapphire, to generate higher-order SAW modes which often show a better electromechanical coupling coefficient k 2 compared to zero-order modes. In this letter, we show that low-attenuated longitudinal SAW can be generated in ScxAl1-xN/Sapphire structure, for x parameter varying in a large range. This theoretical result is then confirmed by the experimental investigation of SAW resonators based on highly-textured (002) Sc0.09Al0.91N films sputtered on c-cut sapphire substrates. It is finally shown that the use of electrodes based on metals with high density can lead to SAW structures offering a unique combination between a large bandgap over 5 eV, a k 2 value beyond 1% and a high SAW velocity near 10000 m/s.

Details

Language :
English
ISSN :
00036951
Database :
OpenAIRE
Journal :
Applied Physics Letters, Applied Physics Letters, American Institute of Physics, 2019, 115 (8), pp.083502. ⟨10.1063/1.5114871⟩
Accession number :
edsair.doi.dedup.....e0d68c5e028d724e7df1d97097ee98f1
Full Text :
https://doi.org/10.1063/1.5114871⟩