SAW Resonators and Filters Based on ScAlN on Single Crystal and Polycrystalline Diamond.

Micromachines (Basel)

Departamento Ciencia de Materiales, Escuela Técnica Superior de Ingenieros de Caminos, Canales y Puertos, Universidad Politécnica de Madrid, Ciudad Universitaria, Calle del Profesor Aranguren 3, 28040 Madrid, Spain.

Published: June 2022

AI Article Synopsis

  • The demand for high data transfer rates in mobile communication requires devices with strong performance and stability across various conditions.
  • Surface acoustic wave (SAW) devices, known for their high Q-factor and stability, were developed using Sc0.43Al0.57N materials on diamond substrates.
  • These SAW resonators and filters demonstrated impressive performance, with frequencies exceeding 4.7 GHz, indicating their potential for advancing 5G technology.

Article Abstract

The massive data transfer rates of nowadays mobile communication technologies demand devices not only with outstanding electric performances but with example stability in a wide range of conditions. Surface acoustic wave (SAW) devices provide a high Q-factor and properties inherent to the employed materials: thermal and chemical stability or low propagation losses. SAW resonators and filters based on Sc0.43Al0.57N synthetized by reactive magnetron sputtering on single crystal and polycrystalline diamond substrates were fabricated and evaluated. Our SAW resonators showed high electromechanical coupling coefficients for Rayleigh and Sezawa modes, propagating at 1.2 GHz and 2.3 GHz, respectively. Finally, SAW filters were fabricated on Sc0.43Al0.57N/diamond heterostructures, with working frequencies above 4.7 GHz and ~200 MHz bandwidths, confirming that these devices are promising candidates in developing 5G technology.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9316532PMC
http://dx.doi.org/10.3390/mi13071061DOI Listing

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