The anisotropic materials as the acoustic wave propagating medium introduce the dependence of the phase velocity on the wave propagation direction, as opposed to the isotropic counterparts; in addition, the profile of the particle displacement components can be quite different, depending on the crystal type and propagation direction. The propagation of surface and bulk acoustic waves (SAWs and BAWs) along the (001), (111) and (110) planes of cubic SiC crystals have been studied. For specific propagation directions in these planes, slight variations in the velocity of the elastic surface waves are found. It was observed that Rayleigh-type, generalized and pseudo-surface waves can propagate at specific directions, thus confirming how the anisotropic behavior of the bare SiC substrate modifies the existence and the field profile of the SAW that propagates at its free surface. Finally, the SAW propagation along AlN/SiC-based multilayered structures is studied for the three SiC planes, different AlN piezoelectric layer thicknesses and electrical boundary conditions.

Theoretical Analysis of SAW Propagation in 3C-SiC/c-AlN

Caliendo;Cinzia
2016

Abstract

The anisotropic materials as the acoustic wave propagating medium introduce the dependence of the phase velocity on the wave propagation direction, as opposed to the isotropic counterparts; in addition, the profile of the particle displacement components can be quite different, depending on the crystal type and propagation direction. The propagation of surface and bulk acoustic waves (SAWs and BAWs) along the (001), (111) and (110) planes of cubic SiC crystals have been studied. For specific propagation directions in these planes, slight variations in the velocity of the elastic surface waves are found. It was observed that Rayleigh-type, generalized and pseudo-surface waves can propagate at specific directions, thus confirming how the anisotropic behavior of the bare SiC substrate modifies the existence and the field profile of the SAW that propagates at its free surface. Finally, the SAW propagation along AlN/SiC-based multilayered structures is studied for the three SiC planes, different AlN piezoelectric layer thicknesses and electrical boundary conditions.
2016
Istituto di fotonica e nanotecnologie - IFN
Inglese
6
3
13
Sì, ma tipo non specificato
3C-SiC
AlN
anisotropy
SAW
BAW
la pubblicazione è SU INVITO e pertanto mi solleva dal pagamento delle tasse di pubblicazione, come da lettera di INVITO di seguito riportata: Dear Dr. Caliendo, This is Jojo Dong from the Editorial Office of Crystals. You published outstanding manuscripts with /Crystals/. We appreciate your supporting. We are glad to let you know that our journal Crystals was selected for inclusion by *SCI-Expanded* in March 2015. http://science.thomsonreuters.com/cgi-bin/jrnlst/jlresults.cgi?PC=D&ISSN=2073-4352 http://www.mdpi.com/journal/crystals/indexing On behalf of the Editor-in-Chief, Prof. Dr. Helmut Cölfen, we would like to invite you, one of the international top experts, to publish a review or full research paper on Crystals *free of charge*. As an online, open-access journal we are able to publish manuscripts quickly while still maintaining a rigorous peer-review process. The official deadline for this special invites is *31 December 2015*. Please visit the Instructions for Authors before submitting a manuscript: http://www.mdpi.com/journal/crystals/instructions/. Once your manuscript is ready, please submit it through our online submission system at http://susy.mdpi.com/user/login/. We are looking forward to hearing from you. Kind regards, Jojo Dong Managing Editor Crystals (http://www.mdpi.com/journal/crystals) -- Ms. Jojo Dong, M.Sc. MDPI Branch Office, Beijing 8th Floor, Aerospace Cooperation Building, No.99 Zhongguancun East Road, Haidian District, Beijing, 100190, China E-Mail: [email protected] Tel./Fax: +86 10 6280 0830 MDPI AG Crystals Editorial Office Klybeckstrassse 64, CH-4057 Basel, Switzerland Tel. +41 61 683 77 34; Fax: +41 61 302 89 18 E-Mail: [email protected] http://www.mdpi.com/journal/crystals
1
info:eu-repo/semantics/article
262
Caliendo; Cinzia
01 Contributo su Rivista::01.01 Articolo in rivista
none
   Dynamic electromechanical control of semiconductor nanostructures by acoustic fields
   SAWTrain
   H2020
   642688
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/353209
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? 8
social impact