Piezoelectric transmitter

US10424714B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10424714-B2
Application numberUS-201816201485-A
CountryUS
Kind codeB2
Filing dateNov 27, 2018
Priority dateSep 5, 2017
Publication dateSep 24, 2019
Grant dateSep 24, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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Abstract

Official abstract text for this publication.

A piezoelectric dipole transmitter is provided that includes a piezoelectric element, an insulating support disposed at a midpoint of said piezoelectric element, or along the piezoelectric element, an external capacitance driver, and an external modulation capacitance disposed proximal to a first end of the piezoelectric element, where the driver capacitance is driven by a signal appropriate to excite a length-extensional acoustic mode of the piezoelectric element, where the piezoelectric element resonates at a piezoelectric element resonance frequency to radiate energy as an electric dipole.

First claim

Opening claim text (preview).

What is claimed: 1. A piezoelectric dipole transmitter, comprising: a) a piezoelectric element; b) an insulating support disposed at a midpoint of said piezoelectric element, or along said piezoelectric element; c) an external capacitance driver; and d) an external capacitor disposed proximal to said piezoelectric element, wherein said external capacitor is capacitively coupled to said piezoelectric element, wherein said external capacitor is driven by said external capacitance driver, wherein said external capacitance driver comprises a signal appropriate to excite a length-extensional acoustic mode of said piezoelectric element, wherein said piezoelectric element resonates at a piezoelectric element resonance frequency to radiate energy as an electric dipole. 2. The piezoelectric dipole transmitter of claim 1 , wherein said piezoelectric element comprises a cylindrical piezoelectric rod, a cuboid rod, or a shape that resonates in said length-extension acoustic mode. 3. The piezoelectric dipole transmitter of claim 1 , wherein said external capacitor comprises a plurality of concentric capacitor rings, or an external conductor having a controllable capacitance-to-ground. 4. The piezoelectric dipole transmitter of claim 1 , wherein said piezoelectric element comprises at least an n=2 vibration mode, wherein a displacement of said midpoint of said piezoelectric element comprises essentially a near zero-displacement. 5. The piezoelectric dipole transmitter of claim 1 , wherein said piezoelectric element has an output signal voltage of at least 100V. 6. The piezoelectric dipole transmitter of claim 1 , wherein said piezoelectric element comprises a material selected from the group consisting of lithium niobate, quartz, PZT, and lithium tantalate. 7. The piezoelectric dipole transmitter of claim 1 , wherein a modulation capacitance charges and discharges at a frequency of at least 1 Hz. 8. The piezoelectric dipole transmitter of claim 1 , wherein an external modulation capacitance and said external capacitance driver are configured for direct antenna modulation (DAM) to dynamically shift said piezoelectric element resonant frequency, wherein a Bode-Fano limit for high-bandwidth communications is bypassed. 9. The piezoelectric dipole transmitter of claim 1 , wherein said external capacitor and said external capacitance driver are configured for modulation of said piezoelectric element by magnetic field biasing, modulating said piezoelectric element by an external stress, or modulating an effective length of said piezoelectric element. 10. The piezoelectric dipole transmitter of claim 1 , wherein said resonating piezoelectric element has a Q-factor as low as 1,000 or a Q-factor greater than 600,000 with no external impedance matching network. 11. The piezoelectric dipole transmitter of claim 1 , wherein said external capacitor comprises metalized electrodes disposed about a perimeter of said piezoelectric element, wherein a voltage applied across said metalized electrodes is said drive signal. 12. The piezoelectric dipole transmitter of claim 1 further comprising a mechanically-free mass load on one end of said piezoelectric element.

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What does patent US10424714B2 cover?
A piezoelectric dipole transmitter is provided that includes a piezoelectric element, an insulating support disposed at a midpoint of said piezoelectric element, or along the piezoelectric element, an external capacitance driver, and an external modulation capacitance disposed proximal to a first end of the piezoelectric element, where the driver capacitance is driven by a signal appropriate to…
Who is the assignee on this patent?
Univ Leland Stanford Junior
What technology area does this patent fall under?
Primary CPC classification H01L41/044. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Sep 24 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).