RF MULTIPLEXER WITH INTEGRATED DIRECTIONAL COUPLERS
20170279469 · 2017-09-28
Inventors
- Yunfei Ma (San Diego, CA, US)
- Chengjie ZUO (San Diego, CA, US)
- David Berdy (San Diego, CA, US)
- Daeik Kim (Del Mar, CA, US)
- Changhan Yun (San Diego, CA, US)
- Je-Hsiung LAN (San Diego, CA, US)
- Mario Velez (San Diego, CA, US)
- Niranjan Sunil MUDAKATTE (San Diego, CA, US)
- Robert Mikulka (Oceanside, CA, US)
- Jonghae KIM (San Diego, CA, US)
Cpc classification
H04B1/0057
ELECTRICITY
H04L5/14
ELECTRICITY
International classification
H04B1/00
ELECTRICITY
H04L5/14
ELECTRICITY
Abstract
An RF diplexer is provided with an integrated diplexer that shares a primary inductor included in a channel within the RF diplexer.
Claims
1. A circuit comprising: an RF diplexer including a first channel and a second channel, wherein the first channel includes a first primary inductor and the second channel includes a second primary inductor; a first directional coupler for the first channel including a first transformer that includes the first primary inductor and a first secondary inductor; and a second directional coupler for the second channel including a second transformer that includes the second primary inductor and a second secondary inductor.
2. The circuit of claim 1, further comprising: a substrate; a plurality of first metal layers covering the substrate, wherein the plurality of first metal layers are configured to form the first primary inductor as a plurality of first coils; and an at least one second metal layer configured to the first secondary inductor as at least one second coil, wherein an axis of the at least one second coil is aligned with an axis of the first coils.
3. The circuit of claim 1, further comprising: an input port for the first channel coupled to a first terminal for the first primary inductor; a coupled port for the first channel coupled to a first terminal of the first secondary inductor; and a capacitor coupled between a second terminal for the first primary inductor and a second terminal for the first secondary inductor.
4. The circuit of claim 3, further comprising: an isolated port for the first channel coupled to the second terminal of the first secondary inductor; and a matched-load resistor coupled between the isolated port for the first channel and ground.
5. The circuit of claim 3, further comprising: a capacitor coupled between the input port for the first channel and ground; and a capacitor coupled in parallel with the first primary inductor.
6. The circuit of claim 5, further comprising: an antenna; an inductor coupled between the second terminal of the first secondary inductor and the antenna; and a capacitor coupled between the second terminal of the first secondary inductor and ground.
7. The circuit of claim 3, further comprising: an input port for the second channel coupled to a first terminal for the second primary inductor; a coupled port for the second channel coupled to a first terminal of the second secondary inductor; and a capacitor coupled between a second terminal for the second primary inductor and a second terminal for the second secondary inductor.
8. The circuit of claim 7, further comprising: an isolated port for the second channel coupled to the second terminal of the second secondary inductor; and a matched-load resistor coupled between the isolated port for the second channel and ground.
9. The circuit of claim 7, further comprising: a capacitor coupled between the input port for the second channel and ground; a capacitor coupled in parallel with the second primary inductor; and a capacitor coupled between the input port for the second channel and the coupled port for the second channel.
10. The circuit of claim 7, further comprising: an antenna; a capacitor coupled between the second terminal of the second primary inductor and the antenna.
11. The circuit of claim 10, further comprising: a grounding capacitor having a first terminal coupled to ground; and a parallel arrangement of a capacitor and an inductor coupled between a second terminal of the grounding capacitor and the second terminal of the second primary inductor.
12. A method, comprising: transmitting a first-band signal through a first-band channel of an RF diplexer to an antenna, wherein transmitting the first-band signal through the first-band channel includes transmitting the first-band signal through a first coil of a first transformer; and generating a first-band feedback signal in a first directional coupler including a second coil of the first transformer responsive to the transmission of the first-band signal through the first coil of the first transformer.
13. The method of claim 12, further comprising: transmitting a second-band signal through a second-band channel of the RF diplexer to the antenna, wherein transmitting the second-band signal through the second-band channel includes transmitting the second-band signal through a first coil of a second transformer; and generating a second-band feedback signal in a second directional coupler including a second coil of the second transformer responsive to the transmission of the second-band signal through the first coil of the second transformer.
14. The method of claim 13, further comprising: amplifying a first input signal through a first power amplifier to form the first-band signal transmitted through the first-band channel of the RF diplexer; and adjusting an amplification of the first input signal by the first power amplifier responsive to the first-band feedback signal.
15. The method of claim 13, wherein the first-band signal and the second-band signal are both cellular telephone signals.
16. The method of claim 14, further comprising: amplifying a second input signal through a second power amplifier to form the second-band signal transmitted through the second-band channel of the RF diplexer; and adjusting an amplification of the second input signal by the second power amplifier responsive to the second-band feedback signal.
17. A circuit, comprising: an antenna; an RF diplexer including a first channel arranged between a first input port and the antenna, the first channel including a first primary inductor; and a first directional coupler for the first channel including a first transformer that includes the first primary inductor and a first secondary inductor.
18. The circuit of claim 17, wherein the circuit is included within a cellular telephone.
19. The circuit of claim 17, wherein the RF diplexer further includes a second channel arranged between a second input port and the antenna, the second channel including a second primary inductor, the circuit further comprising: a second directional coupler for the second channel including a second transformer that includes the second primary inductor and a second secondary inductor.
20. The circuit of claim 19, wherein the first transformer and the second transformer each comprises a plurality of coils arranged within a plurality of metal layers on a substrate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
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[0013] Embodiments of the disclosure and their advantages are best understood by referring to the detailed description that follows. It should be appreciated that like reference numerals are used to identify like elements illustrated in one or more of the figures.
DETAILED DESCRIPTION
[0014] To provide reduced insertion loss and dramatically improved density, an RF diplexer is provided in that includes an integrated directional coupler for each channel. Each integrated directional coupler includes a transformer having a primary inductor and a second inductor. The primary inductor also functions as part of the signal path for the corresponding channel in the RF diplexer. Each primary inductor may be formed as a plurality of coils in a corresponding plurality of metal layers covering a substrate such as a glass substrate in a passive-on-glass (PoG) embodiment. The use of a plurality of metal layers provides the primary inductor with a high quality (Q) factor, which is desirable to lower the insertion loss for the RF diplexer. The secondary inductor may be formed as a coil in another metal layer covering the substrate. Since this secondary inductor is used to form the channel's feedback signal, the Q factor for the secondary inductor need not be as high as the Q factor for the primary inductor. The secondary inductor may thus be formed in just a single metal layer in some embodiments to preserve density and lower manufacturing costs. A terminal for each secondary inductor forms a coupled port for the corresponding directional coupler to provide the directional coupler's feedback signal. Since the primary inductor and the secondary inductor in each channel are arranged to form a transformer, a channel transmission signal driven through the primary inductor magnetically couples into the secondary inductor to provide the channel's coupled port feedback signal.
[0015] An example transmitter 200 including an RF diplexer 205 with integrated directional couplers is shown in
[0016] An example circuit diagram for an RF diplexer 205 is shown in
[0017] With regard to the LB channel in RF diplexer 205, the amplified LB RF input signal passes through the LB input port LB_in to conduct through primary inductor 305. The LB input port LB_in also couples to ground through a capacitor 300 and couples to a first terminal of a capacitor 310 coupled in parallel with primary inductor 305. A second terminal of capacitor 310 couples to ground through a capacitor 315 and also couples to through an inductor 320 to drive antenna 220 (
[0018] The MB channel is analogous in that the MB input port MB_in couples to a first terminal of a primary inductor 335. Primary inductor 335 is arranged to form a transformer with a secondary inductor 360 in an integrated MB directional coupler 380. The MB input terminal MB_in couples to a first terminal of primary inductor 335, which is arranged in parallel with a capacitor 330 analogously to the parallel arrangement of primary inductor 305 and capacitor 310 in the LB channel. A first terminal of secondary inductor 360 couples to the MB coupled port MB_cp to provide the MB feedback signal (
[0019] The MB input port MB_in couples to ground through a capacitor 325 analogously to the coupling of the LB input port LB_in to ground through capacitor 300. The second terminal of primary inductor 335 couples to ground through a parallel combination of an inductor 350 and a capacitor 340 that is in series with another capacitor 345. In addition, the second terminal of primary inductor 335 couples to antenna 220 (
[0020] The transformer formed by primary inductor 305 and secondary inductor 356 as well as the transformer formed by primary inductor 335 and secondary inductor 360 may be implemented as shown in
[0021] A method of operation of an RF diplexer including an integrated directional coupler for each channel will now be discussed with regard to the flowchart of
[0022] The method also includes an act 505 of generating a first-band feedback signal in a first directional coupler including a second coil of the first transformer responsive to the transmission of the first-band signal through the first coil of the first transformer. The generation of the LB feedback signal in secondary inductor 356 or the generation of the MB feedback signal in secondary inductor 360 is an example of act 505.
[0023] As those of some skill in this art will by now appreciate and depending on the particular application at hand, many modifications, substitutions and variations can be made in and to the materials, apparatus, configurations and methods of use of the devices of the present disclosure without departing from the scope thereof. In light of this, the scope of the present disclosure should not be limited to that of the particular embodiments illustrated and described herein, as they are merely by way of some examples thereof, but rather, should be fully commensurate with that of the claims appended hereafter and their functional equivalents.