IP Library › Granted Patent US 11,245,426
Granted Patent B2
US 11,245,426 · App. 16/987,390 · Granted Feb 8, 2022

Band switching balun

Inventors: Amitoj Singh (Sunnyvale, CA); Ajaypat Jain (San Jose, CA); Xiaohua Yu (San Jose, CA); Tienyu Chang (Sunnyvale, CA); Siu-Chuang Ivan Lu (San Jose, CA); Sang Won Son (Palo Alto, CA)
H04B1/006H03D7/1425H04B1/123H04B1/44
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Quick Facts
Patent No.
US 11,245,426
App. No.
16/987,390
Granted
Feb 8, 2022
Kind
B2
Abstract

A band-switching network includes a dual-band balun and a switch network. The dual-band balun includes a first output and a second output. The switch network includes a first switch and a second switch in which an input to the first switch is coupled to the first output and an input to the second switch is coupled to the second balanced output. The dual-band balun further includes a primary coil, a first secondary coil and a second secondary coil in which the first secondary coil is coupled to the first balanced output and the second secondary coil is coupled to the second balanced output. In one embodiment, the primary coil and the first secondary coil are coupled by a first coupling factor k 1 , and the primary coil and the second secondary coil are coupled by a second coupling factor k 2 that is different from the first coupling factor k 1 .

Claims (29)

1. A band-switching network, comprising:

a dual-band circuit comprising a first output and a second output, a primary coil, a first secondary coil coupled to the first output and a second secondary coil coupled to the second output, the primary coil and the first secondary coil being coupled by a first coupling factor k1, and the primary coil and the second secondary coil being coupled by a second coupling factor k2 that is different from the first coupling factor k1; and

a switch network comprising a first switch and a second switch, an input to the first switch being coupled to the first output and an input to the second switch being coupled to the second output.

2. The band-switching network of claim 1 , wherein the dual-band circuit comprises a dual-band balun, and

wherein a layout of the dual-band balun comprises a single balun footprint.

3. The band-switching network of claim 1 , wherein a frequency band of the first output comprises a Fifth Generation (5G) 28G band, and a frequency band of the second output comprises a 5G 39G band.

4. The band-switching network of claim 3 , wherein an output of the first switch is coupled to an output of the second switch.

5. The band-switching network of claim 1 , wherein the first output is coupled to a first input of a signal-path chain, and a first output of the signal-path chain is coupled to the input to the first switch, and

wherein the second output is coupled to a second input of the signal-path chain, and a second output of the signal-path chain is coupled to the input of the second switch.

6. The band-switching network of claim 5 , wherein the first secondary coil includes a first tap for a first bias input, and the second secondary coil includes a second tap for a second bias input, the first bias input controlling a first signal path between the first secondary coil and the first input of the signal-path chain and the second bias input controlling a second signal path between the second secondary coil and the second input of the signal-path chain.

7. The band-switching network of claim 1 , wherein a layout of first secondary coil is located within a layout of the primary coil, and wherein the layout of the primary coil is located within a layout of the second secondary coil.

8. A band-switching network, comprising:

a dual-band circuit comprising a first output and a second output, a primary coil, a first secondary coil coupled to the first output and a second secondary coil coupled to the second output, the primary coil and the first secondary coil being coupled by a first coupling factor k1, and the primary coil and the second secondary coil being coupled by a second coupling factor k2 that is different from the first coupling factor k1; and

a signal-path chain comprising a first input and a second input, the first output being coupled to a first input of the signal-path chain, and the second output being coupled to a second input of the signal-path chain.

9. The band-switching network of claim 8 , wherein the dual-band circuit comprises a dual-band balun, and

wherein a layout of the dual-band balun comprises a single balun footprint.

10. The band-switching network of claim 9 , wherein a frequency band of the first output comprises a Fifth Generation (5G) 28G band, and a frequency band of the second output comprises a 5G 39G band.

11. The band-switching network of claim 8 , wherein the first secondary coil includes a first tap for a first bias input, and the second secondary coil includes a second tap for a second bias input, the first bias input controlling a first signal path between the first secondary coil and the first input of the signal-path chain and the second bias input controlling a second signal path between the second secondary coil and the second input of the signal-path chain.

12. The band-switching network of claim 11 , further comprising a switch network comprising a first switch and a second switch, an input to the first switch being coupled to the first output and an input to the second switch being coupled to the second output, an output of the first switch being coupled to an output of the second switch.

13. The band-switching network of claim 7 , wherein a layout of first secondary coil is located within a layout of the primary coil, and wherein the layout of the primary coil is located within a layout of the second secondary coil.

14. A band-switching network, comprising:

a dual-band circuit comprising a primary coil, a first secondary coil and a second secondary coil, the first secondary coil being coupled to a first output of the dual-band circuit and the second secondary coil being coupled to a second output of the dual-band circuit, the primary coil and the first secondary coil being coupled by a first coupling factor k1, and the primary coil and the second secondary coil being coupled by a second coupling factor k2 that is different from the first coupling factor k1;

a switch network comprising a first switch and a second switch, an input to the first switch being coupled to the first output and an input to the second switch being coupled to the second output, an output of the first switch being coupled to an output of the second switch; and

a signal chain comprising a first input and a second input, the first output being coupled to a first input of the signal chain, and the second output being coupled to a second input of the signal chain.

15. The band-switching network of claim 14 , wherein the dual-band circuit comprises a dual-band balun, and

wherein a layout of the dual-band balun comprises a single balun footprint.

16. The band-switching network of claim 15 , wherein a frequency band of the first output comprises a Fifth Generation (5G) 28G band, and a frequency band of the second output comprises a 5G 39G band.

17. The band-switching network of claim 16 , wherein the first secondary coil includes a first tap for a first bias input, and the second secondary coil includes a second tap for a second bias input, the first bias input controlling a first signal path between the first secondary coil and the first input of the signal chain and the second bias input controlling a second signal path between the second secondary coil and the second input of the signal chain.

18. The band-switching network of claim 14 , wherein a layout of first secondary coil is located within a layout of the primary coil, and wherein the layout of the primary coil is located within a layout of the second secondary coil.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2023
From: SINGH, AMITOJ; JAIN, AJAYPAT; YU, XIAOHUA; CHANG, TIENYU; LU, SIU-CHUANG IVAN; SON, SANG WON
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 064145/0398 →
Continuity (2)
Provisional Application 63034962 · Jun 4, 2020
Related Publication 20210384923A1 · Dec 9, 2021