Claims
- 1. A radio frequency (RF) front-end comprises:
a multi-tap balun having a single-ended primary winding and a symmetrical multi-tap secondary winding, wherein the single-ended primary winding is operably coupled to an antenna; a low noise amplifier coupled to a first set of taps of the symmetrical multi-tap secondary winding; and a power amplifier core coupled to a second set of taps of the symmetrical multi-tap secondary winding.
- 2. The RF front-end of claim 1, further comprising an input matching circuit operably coupled to the primary winding and to an antenna port, wherein the input matching circuit in combination with an input impedance of the multi-tap balun provides a matched impedance of the RF front-end with respect to the antenna in transmit mode and receive mode.
- 3. The RF front-end of claim 2, wherein the input matching circuit comprises a plurality of impedance matching capacitors.
- 4. The RF front-end of claim 2, wherein the multi-tap balun is operable to switch between the transmit mode and the receive mode.
- 5. The RF front-end of claim 1, wherein the primary winding comprises two taps and wherein the symmetrical multi-tap secondary winding comprises five taps.
- 6. The RF front-end of claim 1, wherein the low noise amplifier further comprises an input impedance that is substantially the same when the low noise amplifier is on and when the low noise amplifier is off.
- 7. The RF front-end of claim 1, wherein the power amplifier core further comprises an output impedance that is substantially the same when the power amplifier core is on and when the power amplifier core is off.
- 8. The RF front-end of claim 1, wherein the low noise amplifier further comprises a transistor operably coupled to function as a low noise amplifier on/off switch.
- 9. The RF front-end of claim 1, wherein the power amplifier core comprises a driver stage and an output stage.
- 10. The RF front-end of claim 9, wherein the power amplifier core driver stage includes a shunt transistor to shunt local oscillation leakage from reaching the output stage.
- 11. The RF front-end of claim 1, wherein the symmetrical multi-tap secondary winding is operable as a differential inductor to provide an RF choke for the power amplifier core.
- 12. The RF front-end of claim 1, wherein the RF front-end is fabricated on an integrated circuit (“IC”).
- 13. The RF front-end of claim 12, wherein the low noise amplifier is symmetrically coupled to the multi-tap balun and wherein the power amplifier core is symmetrically coupled to the multi-tap balun.
- 14. The RF front-end of claim 1, wherein the multi-tap balun, the low noise amplifier and the power amplifier core are discrete components on a printed circuit board.
- 15. The RF front-end of claim 1, wherein the low noise amplifier and the power amplifier core are fabricated on an integrated circuit and wherein the multi-tap balun is a discrete component on an off-chip component.
- 16. A radio frequency (RF) front-end comprises:
a low noise amplifier having an input impedance substantially the same in both the low noise amplifier on state and the low noise amplifier off state; and a power amplifier core having an output impedance substantially the same in both the power amplifier core on state and the power amplifier off state.
- 17. The RF front-end of claim 16, further comprising a multi-tap balun having a single-ended primary winding and a symmetrical multi-tap secondary winding, wherein the single-ended primary winding is operably coupled to an antenna.
- 18. The RF front-end of claim 17, wherein the low noise amplifier is coupled to a first set of taps of the symmetrical multi-tap secondary winding and wherein the power amplifier core is coupled to a second set of taps of the symmetrical multi-tap secondary winding.
- 19. The RF front-end of claim 17, further comprising an input matching circuit operably coupled to the primary winding and to an antenna port, wherein the input matching circuit in combination with an input impedance of the multi-tap balun provides a matched impedance of the RF front-end with respect to an antenna in transmit mode and receive mode.
- 20. The RF front-end of claim 19, wherein the input matching circuit comprises a plurality of impedance matching capacitors.
- 21. The RF front-end of claim 17, wherein the multi-tap balun is operable to switch between a transmit mode and a receive mode.
- 22. The RF front-end of claim 17, wherein the symmetrical multi-tap secondary winding is operable as a differential inductor to provide an RF choke for the power amplifier core.
- 23. The RF front-end of claim 16, wherein the low noise amplifier further comprises a transistor operably coupled to function as a low noise amplifier on/off switch.
- 24. The RF front-end of claim 16, wherein the power amplifier core comprises a driver stage and an output stage.
- 25. The RF front-end of claim 29, wherein the power amplifier core driver stage includes a shunt transistor to shunt local oscillation leakage from reaching the output stage.
- 26. The RF front-end of claim 16, wherein the RF front-end is fabricated on an integrated circuit (“IC”).
- 27. A radio comprising:
a transmitter section operably coupled to convert outbound data into outbound radio frequency (RF) signals based on a transmitter local oscillation; a receiver section operably coupled to convert inbound RF signals into inbound data based on a receiver local oscillation; and an RF front-end, operably coupled to convert outbound differential RF signals into outbound single-ended RF signals and to convert inbound single-ended RF signals into inbound differential RF signals, wherein the RF front-end comprises:
a multi-tap balun having a single-ended primary winding and a symmetrical multi-tap secondary winding, wherein the single-ended primary winding is operably coupled to an antenna; a low noise amplifier coupled to a first set of taps of the symmetrical multi-tap secondary winding; and a power amplifier core coupled to a second set of taps of the symmetrical multi-tap secondary winding.
- 28. The radio of claim 27, wherein the RF front end further comprises an input matching circuit operably coupled to the primary winding and to an antenna port, wherein the input matching circuit in combination with an input impedance of the multi-tap balun provides a matched impedance of the RF front-end with respect to the antenna in transmit mode and receive mode.
- 29. The radio of claim 28, wherein the input matching circuit comprises a plurality of impedance matching capacitors.
- 30. The radio of claim 28, wherein the multi-tap balun is operable to switch between the transmit mode and the receive mode.
- 31. The radio of claim 27, wherein the primary winding comprises two taps and wherein the symmetrical multi-tap secondary winding comprises five taps.
- 32. The radio of claim 27, wherein the low noise amplifier further comprises an input impedance that is substantially the same when the low noise amplifier is on and when the low noise amplifier is off.
- 33. The radio of claim 27, wherein the power amplifier core further comprises an output impedance that is substantially the same when the power amplifier core is on and when the power amplifier core is off.
- 34. The radio of claim 27, wherein the low noise amplifier further comprises a transistor operably coupled to function as a low noise amplifier on/off switch.
- 35. The radio of claim 27, wherein the power amplifier core comprises a driver stage and an output stage.
- 36. The radio of claim 35, wherein the power amplifier core driver stage includes a shunt transistor to shunt local oscillation leakage from reaching the output stage.
- 37. The radio of claim 27, wherein the symmetrical multi-tap secondary winding is operable as a differential inductor to provide an RF choke for the power amplifier core.
- 38. The radio of claim 27, wherein the RF front-end is fabricated on an integrated circuit (“IC”).
- 39. The radio of claim 38, wherein the low noise amplifier is symmetrically coupled to the multi-tap balun and wherein the power amplifier core is symmetrically coupled to the multi-tap balun.
- 40. The radio of claim 27, wherein the multi-tap balun, the low noise amplifier and the power amplifier core are discrete components on a printed circuit board.
- 41. The radio of claim 27, wherein the low noise amplifier and the power amplifier core are fabricated on an integrated circuit and wherein the multi-tap balun is a discrete component on an off-chip component.
- 42. A radio comprising:
a transmitter section operably coupled to convert outbound data into outbound radio frequency (RF) signals based on a transmitter local oscillation; a receiver section operably coupled to convert inbound RF signals into inbound data based on a receiver local oscillation; and an RF front-end, operably coupled to convert outbound differential RF signals into outbound single-ended RF signals and to convert inbound single-ended RF signals into inbound differential RF signals, wherein the RF front-end comprises:
a low noise amplifier having an input impedance substantially the same in both the low noise amplifier on state and the low noise amplifier off state; and a power amplifier core having an output impedance substantially the same in both the power amplifier core on state and the power amplifier off state.
- 43. The radio of claim 42, wherein the RF front-end further comprises a multi-tap balun having a single-ended primary winding and a symmetrical multi-tap secondary winding, wherein the single-ended primary winding is operably coupled to an antenna.
- 44. The radio of claim 43, wherein the low noise amplifier is coupled to a first set of taps of the symmetrical multi-tap secondary winding and wherein the power amplifier core is coupled to a second set of taps of the symmetrical multi-tap secondary winding.
- 45. The radio of claim 43, wherein the RF front end further comprises an input matching circuit operably coupled to the primary winding and to an antenna port, wherein the input matching circuit in combination with an input impedance of the multi-tap balun provides a matched impedance of the RF front-end with respect to an antenna in transmit mode and receive mode.
- 46. The radio of claim 45, wherein the input matching circuit comprises a plurality of impedance matching capacitors.
- 47. The radio of claim 43, wherein the multi-tap balun is operable to switch between a transmit mode and a receive mode.
- 48. The radio of claim 43, wherein the primary winding comprises two taps and wherein the symmetrical multi-tap secondary winding comprises five taps.
- 49. The radio of claim 43, wherein the symmetrical multi-tap secondary winding is operable as a differential inductor to provide an RF choke for the power amplifier core.
- 50. The radio of claim 43, wherein the RF front-end is fabricated on an integrated circuit (“IC”).
- 51. The radio of claim 43, wherein the low noise amplifier is symmetrically coupled to the multi-tap balun and wherein the power amplifier core is symmetrically coupled to the multi-tap balun.
- 52. The radio of claim 43, wherein the multi-tap balun, the low noise amplifier and the power amplifier core are discrete components on a printed circuit board.
- 53. The radio of claim 43, wherein the low noise amplifier and the power amplifier core are fabricated on an integrated circuit and wherein the multi-tap balun is a discrete component of an off-chip component.
- 54. The radio of claim 42, wherein the low noise amplifier further comprises a transistor operably coupled to function as a low noise amplifier on/off switch.
- 55. The radio of claim 42, wherein the power amplifier core comprises a driver stage and an output stage.
- 56. The radio of claim 55, wherein the power amplifier core driver stage includes a shunt transistor to shunt local oscillation leakage from reaching the output stage.
- 57. The radio of claim 42, wherein the RF front-end is fabricated on an integrated circuit (“IC”).
CROSS REFERENCE TO RELATED PATENTS
[0001] The present patent is related to co-pending patent applications entitled ON-CHIP TRANSFORMER BALUN, having an attorney docket number BP2095 and a filing date of Jan. 23, 2002, and a serial number of Ser. No. 10/055,425; AN INTEGRATED CIRCUIT LOW-NOISE AMPLIFIER AND APPLICATIONS THEREOF, having an attorney docket number BP2215, and a filing date of Apr. 23, 2002, a serial number of Ser. No. 10/128,193; A MULTI-FUNCTIONAL ON-CHIP TRANSFORMER BALUN FOR RFIC, having an attorney docket number BP2076, and a filing date of ______, and a serial number of Ser. No. ______.