Title:
Trapped hybrid modes in solidly mounted resonators based on c-axis oriented hexagonal crystals

dc.contributor.author Wathen, Adam D. en_US
dc.contributor.author Munir, Farasat en_US
dc.contributor.author Hunt, William D. en_US
dc.contributor.corporatename Georgia Institute of Technology. Center for Organic Photonics and Electronics en_US
dc.contributor.corporatename Georgia Institute of Technology. School of Electrical and Computer Engineering en_US
dc.date.accessioned 2013-05-29T18:28:37Z
dc.date.available 2013-05-29T18:28:37Z
dc.date.issued 2010-12
dc.description © 2010 American Institute of Physics. The electronic version of this article is the complete one and can be found at: http://dx.doi.org/10.1063/1.3517097 en_US
dc.description DOI: 10.1063/1.3517097 en_US
dc.description.abstract Assuming an idealized piezoelectric bulk acoustic wave resonator, one typically calculates the velocity of the fundamental bulk acoustic mode as the measured frequency times twice the thickness of the piezoelectric film. In c-axis 6mm hexagonal crystals of (e.g., ZnO or AlN), both the longitudinal and thickness shear modes are peizoelectrically active using thickness excitation and lateral-field excitation, respectively. Without a loss of generality, we concentrate our study on ZnO films. The theoretical velocity of the pure thickness shear mode in sputtered ZnO, based strictly on reported material properties, is calculated to be approximately 2580 m/s. However, a variety of acoustic velocities for the thickness shear mode in ZnO have been reported in the literature ranging from about 3100–3500 m/s. These reported values represent a 20%–36% increase in acoustic velocity relative to the theoretical values. In the literature, this deviation is typically attributed to ZnO film inconsistencies and other phenomena which can be difficult to quantify. We propose that the reported inconsistencies may be attributed to a hybrid acoustic mode comprised of a coupling of shear and longitudinal particle displacements. In this paper, we present a theoretical description of a hybrid mode in ZnO solidly mounted resonator (SMR) devices. We begin first with an experimental verification of a mode with a changing velocity in a ZnO SMR with the only variable being the ZnO thickness. Using the acoustic velocity through the thickness as an effective velocity with which to reference the mode, we find the effective acoustic velocity to range from 3100–3900 m/s, with increasing ZnO thickness. We then start from the first principles of piezoelectric acoustic wave propagation and derive three coupled partial differential equations describing a hybrid mode comprised of the coupling between longitudinal and shear particle displacement and the corresponding piezoelectrically generated potential in the ZnO film. The qualitative findings described by the derived equations are then further investigated with finite element simulation (COMSOL MULTIPHYSICS®). We simulate the performance of our experimental devices using the COMSOL platform, examine the eigenfrequencies of the structure, and find a hybrid mode which is trapped both vertically and laterally in the ZnO film. Calculating the effective velocity of the simulated modes, we find the simulated effective velocities to be within 1.5% of our measured results. Finally, we compare simulation results to experimentally measured results of a previously observed hybrid mode and achieve a 0.2% agreement. en_US
dc.identifier.citation Wathen, Adam D. and Munir, Farasat and Hunt, William D., "Trapped hybrid modes in solidly mounted resonators based on c-axis oriented hexagonal crystals," Journal of Applied Physics, 108, 11 (December 1 2010) en_US
dc.identifier.doi 10.1063/1.3517097
dc.identifier.issn 0021-8979
dc.identifier.uri http://hdl.handle.net/1853/47102
dc.publisher Georgia Institute of Technology en_US
dc.publisher.original American Institute of Physics en_US
dc.subject Acoustic wave propagation en_US
dc.subject Acoustic wave velocity en_US
dc.subject Crystal resonators en_US
dc.subject Finite element analysis en_US
dc.subject II-VI semiconductors en_US
dc.subject Partial differential equations en_US
dc.subject Semiconductor thin films en_US
dc.subject Wide band gap semiconductors en_US
dc.subject Zinc compounds en_US
dc.title Trapped hybrid modes in solidly mounted resonators based on c-axis oriented hexagonal crystals en_US
dc.type Text
dc.type.genre Article
dspace.entity.type Publication
local.contributor.author Hunt, William D.
local.contributor.corporatename Center for Organic Photonics and Electronics
relation.isAuthorOfPublication 8dfe8c09-39f6-4895-9ac7-547efb52a173
relation.isOrgUnitOfPublication 43f8dc5f-0678-4f07-b44a-edbf587c338f
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