Bulk acoustic wave resonator tuner circuits

US9819327B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9819327-B2
Application numberUS-201314398049-A
CountryUS
Kind codeB2
Filing dateJun 26, 2013
Priority dateJun 26, 2013
Publication dateNov 14, 2017
Grant dateNov 14, 2017

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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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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Techniques and configurations are disclosed for bulk acoustic wave resonator (BAWR) tuner circuits and their use in integrated circuit (IC) packages and mobile communication devices for radio frequency (RF) communication. In some embodiments, a mobile communication device may include an antenna; a transmitter circuit having an output port, a tuner circuit having one or more BAWRs, an antenna port coupled to the antenna, a transmitter port coupled to the output port of the transmitter circuit, and a control port; and a control circuit, coupled to the control port, configured to adjust an impedance of the tuner circuit, via adjustment of a BAWR or another component of the tuner circuit, based at least in part on an impedance of the antenna. Other embodiments may be described and/or claimed.

First claim

Opening claim text (preview).

What is claimed is: 1. A mobile communication device, comprising: a first antenna; a transmitter circuit having an output port; a tuner circuit having one or more bulk acoustic wave resonators (BAWRs), an antenna port coupled to the first antenna, a transmitter port coupled to the output port of the transmitter circuit, and a control port; and a control circuit, coupled to the control port, configured to adjust an impedance of the tuner circuit, via adjustment of a BAWR or another component of the tuner circuit, based at least in part on an impedance of the first antenna; and a second antenna, different from the first antenna, coupled to a receiver. 2. The mobile communication device of claim 1 , wherein: the transmitter circuit comprises a power amplifier (PA), the PA having a supply voltage port for receiving a supply voltage, the PA having a PA output port coupled to the output port of the transmitter circuit, wherein the PA output port is for outputting a current at an output power level, and wherein the PA has a peak output power based at least in part on an impedance of the tuner circuit and the first antenna, as measured at the output port; and the control circuit is configured to adjust the impedance of the tuner circuit, via adjustment of a BAWR or another component of the tuner circuit, to match the peak output power of the PA to the output power level. 3. The mobile communication device of claim 1 , wherein: the transmitter circuit comprises a diplexer having a transmitter port coupled to a transmitter, the diplexer further having a receiver port coupled to a receiver and a diplexer output port coupled to the output port of the transmitter circuit and controllably coupled to one of the transmitter port and the receiver port; and the control circuit is configured to adjust the impedance of the tuner circuit, via adjustment of a BAWR or another component of the tuner circuit, to enable a combined impedance of the tuner circuit and the first antenna, as measured at the output port of the transmitter circuit, to match to an impedance of the transmitter when the diplexer output port is coupled to the transmitter port. 4. The mobile communication device of claim 1 , wherein the control circuit is embedded in a mold compound of an embedded ball grid array structure and at least one of the BAWRs is disposed outside the mold compound. 5. A method for radio frequency communication, comprising: providing a tuner circuit having one or more bulk acoustic wave resonators (BAWRs), an antenna port coupled to an antenna, and a control port; providing a control circuit, coupled to the control port, configured to adjust an impedance of the tuner circuit based at least in part on an impedance of the antenna; and providing a diplexer having a transmitter port to be coupled to a transmitter, the diplexer further having a receiver port to be coupled to a receiver and a diplexer output port coupled to the tuner circuit and controllably coupled to one of the transmitter port and the receiver port; wherein the control circuit is configured to adjust the impedance of the tuner circuit, via adjustment of a BAWR or another component of the tuner circuit, to enable a combined impedance of the tuner circuit and the antenna, as measured at the output port of the transmitter, to match an impedance of the transmitter when the diplexer output port is coupled to the transmitter port. 6. The method of claim 5 , further comprising: adjusting the impedance of the tuner circuit, using the control circuit, based at least in part on an impedance of the antenna. 7. The method of claim 5 , further comprising: providing a power amplifier (PA) having a PA output port to be coupled to the tuner circuit and configured to output a current at an output power level, wherein the PA has a peak output power based at least in part on an impedance of the tuner circuit and the antenna, as measured at the output port; wherein the control circuit is configured to adjust the impedance of the tuner circuit by adjusting a BAWR or another component of the tuner circuit to enable an impedance of the tuner circuit to match the peak output power of the PA to the output power level. 8. A radio frequency (RF) communication circuit, comprising: a radio frequency diplexer having a transmitter port to be coupled to a transmitter, a receiver port to be coupled to a receiver, and a diplexer output port to be controllably coupled to one of the transmitter port and the receiver port; a tuner circuit, coupled to the diplexer output port, having one or more bulk acoustic wave resonators (BAWRs) and one or more other components, an antenna port to be coupled to an antenna, and a control port; and a control circuit, coupled to the control port, configured to adjust an impedance of the tuner circuit via adjustment of a BAWR or other component of the tuner circuit, to enable a combined impedance of the tuner circuit and the antenna, as measured at the diplexer output port, to match an impedance of the transmitter when the diplexer output port is coupled to the transmitter port, and to match an impedance of the receiver when the diplexer output port is coupled to the receiver port. 9. The RF communication circuit of claim 8 , wherein the control circuit is configured to adjust a DC voltage to be applied between two electrodes of at least one BAWR, included in the tuner circuit, to adjust the impedance of the tuner circuit. 10. The RF communication circuit of claim 8 , wherein the control circuit comprises an adjustable DC voltage source configured to apply an adjustable DC voltage to adjust a capacitance of a varactor arranged in series or in parallel with at least one of the one or more BAWRs. 11. The RF communication circuit of claim 8 , wherein the control circuit comprises a signal source configured to apply electrical signals to adjust a capacitance of a microelectromechanical systems (MEMS) capacitor arranged in series or in parallel with at least one of the one or more BAWRs. 12. The RF communication circuit of claim 8 , wherein the control circuit is embedded in a mold compound of an embedded ball grid array structure and at least one of the BAWRs is disposed outside the mold compound. 13. The RF communication circuit of claim 8 , further comprising: a power amplifier (PA) to be coupled between the transmitter and the transmitter port; wherein the control circuit is embedded in a mold compound of an embedded ball grid array structure and the PA is disposed outside the mold compound. 14. The RF communication circuit of claim 8 , further comprising: a power amplifier (PA) to be coupled between the transmitter and the transmitter port; wherein the control circuit and the PA are embedded in a mold compound of an embedded ball grid array structure. 15. A radio frequency (RF) communication circuit, comprising: a tuner circuit having one or more bulk acoustic wave resonators (BAWRs), an antenna port to be coupled to a transmit antenna, a signal port, and a control port; a power amplifier (PA) having an output port, coupled to the signal port, and configured to output a current at an output power level, wherein the PA has a peak output power based at least in part on an impedance of the tuner circuit and the antenna, as measured at the output port; and a control circuit, coupled to the control port, configured to adjust an impedance of the tuner circuit to match the peak output power of the PA to the output power level; wherein the control circuit is embedded in a mold compound of an embedded ball grid array structure, and the PA and at least one of the BAWR

Assignees

Inventors

Classifications

  • Automatic matching of load impedance to source impedance · CPC title

  • at the feed, e.g. for impedance matching · CPC title

  • H03H9/0014Primary

    using bulk acoustic wave devices · CPC title

  • Arrangements for matching and coupling between power amplifier and antenna or between amplifying stages (matching circuits in general H03H) · CPC title

  • H04B1/48Primary

    in circuits for connecting transmitter and receiver to a common transmission path, e.g. by energy of transmitter {(H04B1/46 takes precedence)} · CPC title

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What does patent US9819327B2 cover?
Techniques and configurations are disclosed for bulk acoustic wave resonator (BAWR) tuner circuits and their use in integrated circuit (IC) packages and mobile communication devices for radio frequency (RF) communication. In some embodiments, a mobile communication device may include an antenna; a transmitter circuit having an output port, a tuner circuit having one or more BAWRs, an antenna po…
Who is the assignee on this patent?
Maruthamuthu Saravana, Meyer Thorsten, Herrero Pablo, and 5 more
What technology area does this patent fall under?
Primary CPC classification H03H9/0014. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Nov 14 2017 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 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).