Claims
- 1. A self-regulated power supply, comprising:
an RF-DC converter for converting an RF signal at an input node to a power signal at an output node; a voltage sensor for monitoring said power signal to generate a control signal; and a shunt element connected to said input node to attenuate said RF signal in response to said control signal; wherein said voltage sensor drives said control signal at a first slew rate and a second slew rate while said second slew rate is greater than said first slew rate.
- 2. The self-regulated power supply as claimed in claim 1, wherein said voltage sensor comprises a filter for driving said control signal at a first slew rate and a second slew rate in response to said power signal and a mode control signal;
- 3. The self-regulated power supply as claimed in claim 2, wherein said filter comprises:
a first unit-gain buffer having a first input coupled to said power signal and a first output; and a second unit-gain buffer having a second input coupled to said power signal, a second output connected to said first output to generate said control signal, and an enable input connected to said mode control signal; wherein said second unit-gain buffer has a slew rate greater than that of said first unit-gain buffer, and said second unit-gain buffer is enabled when said mode control signal is asserted.
- 4. The self-regulated power supply as claimed in claim 3, wherein said filter further comprises a MOS transistor connected to said second unit-gain buffer in parallel and provided with a gate connected to said mode control signal.
- 5. The self-regulated power supply as claim in claim 1, wherein said RF-DC converter has a plurality of series-connected stages, each of which comprises:
a first diode having an anode connected to an input terminal and a cathode connected to a central terminal; a second diode having an anode connected to said central terminal and a cathode connected to an output terminal; a first capacitor connected between said central terminal and said input node; a second capacitor connected between said output terminal and a reference node; and a third diode having an anode connected to said output terminal and a cathode connected to said output node.
- 6. The self-regulated power supply as claimed in claim 5, wherein said first and second diodes are implemented by low threshold diode-connected MOS transistors.
- 7. The self-regulated power supply as claimed in claim 5, wherein said first and second capacitors are implemented by metal-insulator-metal (MIM) capacitors.
- 8. The self-regulated power supply as claimed in claim 5, wherein said RF-DC converter further comprises a switch connected between said output terminal of the next last stage and said output node while said switch is controlled by said output terminal of the last stage.
- 9. An AM data recovery circuit, comprising:
a demodulator for converting an incoming RF signal at an input node to a base-band signal at an output node; a low pass filter for generating a reference signal that follows and approaches said base-band signal with a time constant; a comparator for comparing said base-band signal and said reference signal so as to generate a digital data signal; a reset for generating a reset signal in response to transitions of said digital data signal; and a switch for resetting said reference signal in response to said reset signal.
- 10. The AM data recovery circuit as claimed in claim 9, wherein said filter comprises:
a resistor connected to said output node of said demodulator; and a capacitor connected to said resistor to form a reference signal node at which said reference signal can be generated.
- 11. The AM data recovery circuit as claimed in claim 10, wherein said switch is a MOS transistor connected to said resistor in parallel while said MOS transistor has a gate controlled by said reset signal.
- 12. The AM data recovery circuit as claimed in claim 9, wherein said comparator has hysteresis.
- 13. The AM data recovery circuit as claimed in claim 9, said demodulator has a plurality of series-connected stages, each of which comprises:
a first diode having an anode connected to an input terminal and a cathode connected to a central terminal; a second diode having an anode connected to said central terminal and a cathode connected to an output terminal; a first capacitor connected between said central terminal and said input node; a second capacitor connected between said output terminal and a reference node; and a third diode having an anode connected to said output terminal and a cathode connected to said output node.
- 14. The self-regulated power supply as claimed in claim 13, wherein said first and second diodes are implemented by low threshold diode-connected MOS transistors.
- 15. The self-regulated power supply as claimed in claim 13, wherein said first and second capacitors are implemented by metal-insulator-metal (MIM) capacitors.
- 16. The self-regulated power supply as claimed in claim 13, wherein said demodulator further comprises a switch connected between said output terminal of the next last stage and said output node while said switch is controlled by said output terminal of the last stage.
- 17. An AM data recovery circuit, comprising:
a demodulator for converting an incoming RF signal at an input node to a voltage signal at an output node; and a current-mode data detector for converting said voltage signal into a current source, said current-mode data detector having a current output proportional to the power at said output node of said demodulator such that a demodulated signal can be generated.
- 18. The AM data recovery circuit as claimed in claim 17, further comprising:
said current-mode data detector for generating a control signal; a low pass filter for generating another signal in response to said control signal; and a shunt element connected to said input node of said demodulator to attenuate said RF signal in response to said control signal.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application claims the priority benefits of U.S. provisional application entitled “RADIO FREQUENCY DATA COMMUNICATION DEVICE IN CMOS PROCESS” filed on Apr. 9, 2002 Ser. No. 60/371,363. All disclosures of this application are incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60371363 |
Apr 2002 |
US |