IP Library Granted Patent US 9,935,614
Granted Patent B2
US 9,935,614 · App. 15/339,737 · Granted Apr 3, 2018

Multi-state attenuator

Inventor: Ravindranath Shrivastava (San Diego, CA)
Assignee: pSemi Corporation
H03H11/245
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Quick Facts
Patent No.
US 9,935,614
App. No.
15/339,737
Granted
Apr 3, 2018
Kind
B2
Abstract

Multi-state radio frequency (RF) attenuator configurations that include bridged-T type, pi-type, and T-type structures each having a programmable throughput section and a coupled programmable shunt section. The throughput sections and shunt sections may be configured in various combinations of parallel and serial fixed or selectable resistance elements such that multiple resistance states and impedance matching states can be programmatically selected, and may include stacked switch elements to withstand applied voltages to a specified design level.

Claims (32)

1. A programmable multi-state attenuator for a signal, including:

(a) a throughput section having an input terminal, an output terminal, at least one connection node, and at least two selectable signal attenuation paths coupled between the input terminal and the output terminal, for selectably coupling an applied signal from the input terminal to the output terminal through at least one of the at least two selectable signal attenuation paths to provide a corresponding attenuation state for the applied signal; and

(b) a shunt section including at least one shunt leg coupled between a corresponding one of the at least one connection node of the throughput section and a reference voltage, each shunt leg for selectively coupling its corresponding one connection node to the reference voltage, at least one shunt leg including (1) at least one selectable shunt switch, and (2) at least two series-connected impedance elements coupled in series with a corresponding one of the at least one selectable shunt switch, at least one of the at least two series-connected impedance elements being selectably configurable to provide at least two impedance states for the at least one shunt leg, each impedance state corresponding to an attenuation state of the throughput section.

2. The programmable multi-state attenuator of claim 1 , wherein at least one selectable shunt switch includes two or more concurrently switchable stacked switching elements.

3. The programmable multi-state attenuator of claim 1 , further including a selectable bypass path between the input terminal and the output terminal, for selectably coupling an applied signal from the input terminal to the output terminal through the selectable bypass path to provide a through state for the applied signal.

4. The programmable multi-state attenuator of claim 3 , wherein the selectable bypass path includes two or more concurrently switchable stacked switching elements.

5. The programmable multi-state attenuator of claim 1 , wherein the throughput section and the shunt section are arranged in one of a bridged-T type configuration, a pi-type configuration, a T-type configuration, or an L-pad type configuration.

6. The programmable multi-state attenuator of claim 1 , wherein at least one shunt leg series-connected impedance element includes at least one bypassable series resistance.

7. The programmable multi-state attenuator of claim 1 , wherein the at least one shunt leg series-connected impedance element includes at least one fixed resistance in series with at least one series-connected bypassable resistance.

8. The programmable multi-state attenuator of claim 1 , wherein the at least one shunt leg series-connected impedance element includes at least one fixed resistance in series with at least two bypassable parallel resistances.

9. The programmable multi-state attenuator of claim 1 , wherein at least one shunt leg series-connected impedance element includes a programmable matrix of selectable resistance elements.

10. The programmable multi-state attenuator of claim 1 , wherein at least one throughput section selectable signal attenuation path includes at least one selectable series resistance element.

11. The programmable multi-state attenuator of claim 10 , wherein at least one selectable series resistance element includes two or more concurrently switchable stacked switching elements.

12. The programmable multi-state attenuator of claim 1 , wherein at least two throughput section selectable signal attenuation paths are in parallel with each other between the input terminal and the output terminal.

13. The programmable multi-state attenuator of claim 1 , wherein at least one throughput section selectable signal attenuation path includes at least one selectable series resistance element in series with at least one bypassable augmenting resistance element.

14. The programmable multi-state attenuator of claim 1 , wherein at least two throughput section selectable signal attenuation paths are series-connected bypassable resistance elements.

15. The programmable multi-state attenuator of claim 1 , wherein at least two throughput section selectable signal attenuation paths are tiered bypassable series resistances.

16. The programmable multi-state attenuator of claim 1 , wherein at least one throughput section selectable signal attenuation path includes a programmable matrix of selectable resistance element.

17. The programmable multi-state attenuator of claim 1 , wherein the throughput section and the shunt section are selectively configurable to create a multifunctional variable-type multi-state attenuator.

18. The programmable multi-state attenuator of claim 1 , wherein the throughput section and the shunt section are selectively configurable between at least two different multi-state attenuator types selected from the group comprising a bridged-T type, a pi-type, a T-type, and an L-pad type attenuator.

19. A programmable multi-state attenuator for a signal, including:

(a) a throughput section having an input terminal, an output terminal, at least one connection node, and at least two selectable signal attenuation paths coupled between the input terminal and the output terminal, for selectably coupling an applied signal from the input terminal to the output terminal through at least one of the at least two selectable signal attenuation paths to provide a corresponding attenuation state for the applied signal; and

(b) a shunt section including at least one shunt leg coupled between a corresponding one of the at least one connection node of the throughput section and a reference voltage, each shunt leg for selectively coupling its corresponding one connection node to the reference voltage, at least one shunt leg including (1) at least one selectable shunt switch, and (2) at least one series-connected impedance element coupled in series with a corresponding one of the at least one selectable shunt switch.

20. The programmable multi-state attenuator of claim 19 , further including a selectable bypass path between the input terminal and the output terminal, for selectably coupling an applied signal from the input terminal to the output terminal through the selectable bypass path to provide a through state for the applied signal.

21. The programmable multi-state attenuator of claim 19 , wherein at least one series-connected impedance element includes one or more field effect transistors biased to behave as voltage controlled variable resistors.

22. The programmable multi-state attenuator of claim 19 , wherein at least one selectable signal attenuation path in the throughput section includes one or more field effect transistors biased to behave as voltage controlled variable resistors.

23. A programmable multi-state attenuator for a signal, including:

(a) a throughput section having an input terminal, an output terminal, at least one connection node, and at least one signal attenuation path coupled between the input terminal and the output terminal, for coupling an applied signal from the input terminal to the output terminal through at least one signal attenuation path to provide a corresponding attenuation state for the applied signal; and

(b) a shunt section including at least one shunt leg coupled between a corresponding one of the at least one connection node of the throughput section and a reference voltage, each shunt leg for selectively coupling its corresponding one connection node to the reference voltage, at least one shunt leg including (1) at least one selectable shunt switch, and (2) at least two series-connected impedance elements coupled in series with a corresponding one of the at least one selectable shunt switch, at least one of the at least two series-connected impedance elements being selectably configurable to provide at least two impedance states for the at least one shunt leg.

24. The programmable multi-state attenuator of claim 23 , further including a selectable bypass path between the input terminal and the output terminal, for selectably coupling an applied signal from the input terminal to the output terminal through the selectable bypass path to provide a through state for the applied signal.

25. The programmable multi-state attenuator of claim 23 , wherein at least one series-connected impedance element includes one or more field effect transistors biased to behave as voltage controlled variable resistors.

26. The programmable multi-state attenuator of claim 23 , wherein at least one signal attenuation path in the throughput section includes one or more field effect transistors biased to behave as voltage controlled variable resistors.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2025
From: SHRIVASTAVA, RAVINDRANATH
To: PEREGRINE SEMICONDUCTOR CORPORATION
Reel/Frame 071908/0380 →
CHANGE OF NAME Recorded Jan 24, 2018
From: PEREGRINE SEMICONDUCTOR CORPORATION
To: PSEMI CORPORATION
Reel/Frame 045749/0391 →
Continuity (2)
Continuation 14878750 · Oct 8, 2015
Related Publication 20170104471A1 · Apr 13, 2017