Nothing Special   »   [go: up one dir, main page]

Morency et al., 1978 - Google Patents

Experimental measurement of the SAW properties of berlinite

Morency et al., 1978

Document ID
4358387439439798419
Author
Morency D
Soluch W
Vetelino J
Mittleman S
Harmon D
Surek S
Field J
Lehmann G
Publication year
Publication venue
Applied Physics Letters

External Links

Snippet

The surface acoustic wave properties of berlinite have been measured for the x-axis boule 92.7 S· cut. This cut was found to be temperature compensated at 32· C. The velocity and coupling coefficient k 2 were found to be 2747 m/sec and 0.003, respectively. The velocity …
Continue reading at pubs.aip.org (other versions)

Classifications

    • HELECTRICITY
    • H03BASIC ELECTRONIC CIRCUITRY
    • H03HIMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
    • H03H9/00Networks comprising electromechanical or electro-acoustic devices; Electromechanical resonators
    • H03H9/02Details
    • H03H9/02535Details of surface acoustic wave devices
    • H03H9/02543Characteristics of substrate, e.g. cutting angles
    • HELECTRICITY
    • H03BASIC ELECTRONIC CIRCUITRY
    • H03HIMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
    • H03H9/00Networks comprising electromechanical or electro-acoustic devices; Electromechanical resonators
    • H03H9/02Details
    • H03H9/02007Details of bulk acoustic wave devices
    • H03H9/02015Characteristics of piezoelectric layers, e.g. cutting angles

Similar Documents

Publication Publication Date Title
Smith et al. Temperature dependence of the elastic, piezoelectric, and dielectric constants of lithium tantalate and lithium niobate
Schulz et al. Temperature dependence of surface acoustic wave velocity on α quartz
Morency et al. Experimental measurement of the SAW properties of berlinite
US5081389A (en) Crystal cut angles for lithium tantalate crystal for novel surface acoustic wave devices
Zaitsev et al. Investigation of quasi-shear-horizontal acoustic waves in thin plates of lithium niobate
US4670680A (en) Doubly rotated orientations of cut angles for quartz crystal for novel surface acoustic wave devices
Bartlett et al. Elastic constants of tantalum monocarbide, TaC0. 90
Taziev SAW properties in quartz-like α-GeO2 single crystal
Gerber et al. Quartz frequency standards
Shiosaki et al. Piezoelectric properties of Se film deposited on Te crystal
Weinert et al. New piezoelectric materials which exhibit temperature stability for surface waves
Gupta et al. Surface acoustic wave properties of lithium gallium oxide
Kushibiki et al. Propagation characteristics of leaky SAWs on water/LiNbO3 boundary measured by acoustic microscope with line-focus beam
Slobodnik et al. Lithium tantalate SAW substrate minimal diffraction cuts
Kim et al. An analysis of surface acoustic wave propagation in a piezoelectric film over a GaAs/AlGaAs heterostructure
Gopinathan et al. Ultrasonic studies on bismuth single crystals
Kaushik et al. Thin film thickness monitoring using a doubly oscillating quartz crystal and measurement of growth rate
Bilobran et al. Thermally tunable surface acoustic wave cavities
Wauk Suppression of Spurious Triple‐Transit Signals in Acoustic Surface‐Wave Delay Lines
Joshi Surface-acoustic-wave (SAW) voltage sensor with improved sensitivity
Van Empel et al. Independent multiple oscillations of a single quartz wafer
Hoskins et al. UHF single‐phase line acoustic wave transducers
Zarka et al. Assessment of material perfection and observation of vibration modes in lithium tantalate by X-ray topography
EP0924856A2 (en) A surface acoustic wave device
Bigler et al. Design and test of 3 GHz, fundamental mode surface transverse wave resonators on quartz