Claims
- 1. An amplifier, comprising:
a substrate; and a plurality of switched current mirrors disposed on the substrate.
- 2. The amplifier of claim 1, wherein a gain of the amplifier is variable.
- 3. The integrated circuit of claim 2, wherein the gain of the amplifier is digitally controlled.
- 4. The amplifier of claim 1, wherein the amplifier has a power-on mode of operation and a power-down mode of operation, and a software control bit is used to switch between the power-on mode of operation and the power-down mode of operation.
- 5. The amplifier of claim 1, wherein the amplifier operates in a burst mode.
- 6. The amplifier of claim 1, further comprising:
an internal transistor amplifier; a level shifter coupled to an input port of the internal transistor amplifier; and a switch used to couple the level shifter to a voltage source or to a current sink to ground, wherein the variable-gain current-mode amplifier produces an output current proportional to an input current when the switch couples the level shifter to the current sink to ground, and wherein the output current is turned off when the switch couples the level shifter to the voltage source.
- 7. The amplifier of claim 1, wherein at least one of the plurality of switched current mirrors is always enabled during an output burst-on state of the amplifier.
- 8. The amplifier of claim 1, wherein the plurality of switched current mirrors are controlled using a thermometer code.
- 9. The amplifier of claim 1, wherein an input signal is coupled to a diode-connected transistor.
- 10. The amplifier of claim 1, wherein the amplifier comprises:
an internal transistor amplifier that is used to reduce an input impedance of the amplifier.
- 11. The amplifier of claim 1, wherein the amplifier is a type class-A amplifier.
- 12. The amplifier of claim 1, wherein the amplifier is a type class-AB amplifier.
- 13. The amplifier of claim 1, wherein the amplifier power consumption scales with the amplifier output level.
- 14. The amplifier of claim 1, further comprising:
a plurality of switched current sources, wherein the plurality of switched current sources are used to adjust a bias current of the amplifier.
- 15. The amplifier of claim 1, wherein the amplifier is differential.
- 16. The amplifier of claim 1, wherein the amplifier includes electrostatic discharge protection on an input port of the amplifier.
- 17. The amplifier of claim 16, wherein the electrostatic discharge protection comprises a plurality of resistors, at least one of the plurality of resistors being coupled to a bypass conductor that can be disabled.
- 18. The amplifier of claim 16, wherein the electrostatic discharge protection comprises a first gate-oxide grounded-gate NMOS device in parallel with a second gate-oxide grounded-gate NMOS device.
- 19. The amplifier of claim 18, wherein the first gate-oxide grounded-gate NMOS device is a thin-gate-oxide grounded-gate NMOS device.
- 20. The amplifier of claim 18, wherein the second gate-oxide grounded-gate NMOS device is a thick-gate-oxide grounded-gate NMOS device.
- 21. The amplifier of claim 16, wherein the electrostatic discharge protection comprises a thin-gate-oxide grounded-gate NMOS device in parallel with a thick-gate-oxide grounded-gate NMOS device.
- 22. The amplifier of claim 1, wherein the amplifier includes electrostatic discharge protection on an output port of the amplifier.
- 23. A method for amplifying a signal, comprising:
scaling an input current signal by a scaling factor to form a first intermediate current signal; adding a bias current to the first intermediate current signal to form a second intermediate current signal; and amplifying the second intermediate current signal using a plurality of switched current mirrors to form an amplified current signal, the number of switched current mirrors used to amplify the second intermediate current signal being based on a gain control signal.
- 24. The method of claim 23, further comprising:
varying the gain control signal to make course gain changes.
- 25. The method of claim 23, further comprising:
varying the scaling factor to make fine gain changes.
- 26. The method of claim 23, further comprising:
forming the input current signal from a voltage signal.
- 27. The method of claim 23, further comprising:
forming the input current signal from a digital signal.
- 28. The method of claim 23, further comprising:
forming a voltage signal from the amplified current signal.
- 29. An integrated amplifier for a cable modem or a cable set-top box system, comprising:
a diode-connected input transistor disposed on a substrate; and a plurality of output transistors disposed on the substrate, wherein an input signal coupled to the input transistor is variably amplified using an enabled current mirror formed from the input transistor and one of a plurality of output transistors.
- 30. The amplifier of claim 29, wherein the current mirror is enabled using a switching transistor under the control of a digital signal.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/296,481, filed Jun. 8, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
|
60296481 |
Jun 2001 |
US |