Claims
- 1. A signal-filtering circuit arrangement, comprising:
a transconductance cell having input and output ports and first and second current paths passing current from a power source terminal to a power drain terminal; and a common mode feedback circuit including a high-impedance circuit configured and arranged to compare a sampled common mode voltage to a reference voltage and to provide common mode feedback to the transconductance cell, and including a signal-sampling circuit configured and arranged to sample a common mode voltage of the transconductance cell using a high impedance isolation arrangement of MOS-type transistors and to provide the sampled common mode voltage for driving an input port of the high-impedance circuit.
- 2. A signal-filtering circuit arrangement, according to claim 1, wherein each of the input and output ports of the transconductance cell is differential.
- 3. A signal-filtering circuit arrangement, according to claim 1, wherein the high-impedance circuit includes a MOS-type transistor responsive to the reference voltage, and the reference voltage is set at a selected common mode voltage threshold.
- 4. A signal-filtering circuit arrangement, according to claim 1, wherein each of the first and second current paths includes MOS-type transistors of the opposite polarity.
- 5. A signal-filtering circuit arrangement, according to claim 1, wherein each of the input and output ports of the transconductance cell is differential and wherein the high-impedance circuit includes a MOS-type transistor responsive to the reference voltage, and the reference voltage is set at a selected common mode voltage threshold.
- 6. A signal-filtering circuit arrangement, according to claim 1, wherein the transconductance cell also has a common mode feedback port adapted to control the common mode voltage at the output port in response to the common mode feedback.
- 7. A signal-filtering circuit arrangement, according to claim 6, wherein the MOS-type transistors are adapted to operate in the linear region to provide the sampled common mode voltage.
- 8. A signal-filtering circuit arrangement, according to claim 6, wherein the MOS-type transistors include a source-follower circuit having first and second transistors intercoupled to provide the sampled common mode voltage.
- 9. A signal-filtering circuit arrangement, according to claim 1, wherein the MOS-type transistors include a pair of active MOS-type transistors coupled to a node that is adapted to drive the high-impedance circuit with the sampled common mode voltage, and further include first and second source follower circuits, wherein the pair of active MO S-type transistors drives the node in response to energy provided by the first and second source follower circuit paths.
- 10. A signal-filtering circuit arrangement, comprising:
a gyrator having input and output ports and first and second current paths passing current from a power source terminal to a power drain terminal; and a common mode feedback circuit including means for comparing a sampled common mode voltage to a reference voltage and for providing common mode feedback to the gyrator, and including means for sampling a common mode voltage from the gyrator using an arrangement of high-impedance transistors for minimizing loading effects and for providing the sampled common mode voltage, the sampled common mode voltage adapted to drive an input port of the high-impedance circuit.
- 11. A signal-filtering circuit arrangement, comprising:
a transconductance cell having two pairs of current paths passing current from a power source terminal to a power drain terminal, one of the pairs of current paths coupled to a differential input port and another of the pairs of current paths coupled to a differential output port; and a common mode feedback circuit including a high-impedance circuit and a signal-sampling circuit, the signal-sampling circuit being configured and arranged to sample a common mode voltage of the transconductance cell at the differential output port using a high impedance isolation arrangement of MOS-type transistors and to provide a sampled common mode voltage for driving an input port of the high-impedance circuit, the high-impedance circuit configured and arranged to compare the sampled common mode voltage to a reference voltage and to provide common mode feedback to the transconductance cell.
- 12. A signal-filtering circuit arrangement, according to claim 11, wherein the high-impedance isolation arrangement of MOS-type transistors is implemented using NMOS transistors.
- 13. A signal-filtering circuit arrangement, according to claim 11, wherein the high-impedance circuit is implemented using NMOS transistors.
- 14. A signal-filtering circuit arrangement, according to claim 11, wherein the high-impedance isolation arrangement of MOS-type transistors is implemented using a source follower arrangement and using a pair of MOS transistors interconnected at a node that is adapted to provide the common mode feedback to the transconductance cell.
- 15. A signal-filtering circuit arrangement, according to claim 14, wherein the transconductance cell includes a common mode feedback input port adapted to control the current paths coupled to the differential output port.
- 16. A signal-filtering circuit arrangement, according to claim 11, wherein the transconductance cell includes a common mode feedback input port adapted to control the current paths coupled to the differential output port.
- 17. A signal-filtering circuit arrangement, according to claim 14, further including a plurality of transconductance cells arranged consistent with the transconductance cell of claim 14 and with common mode feedback being provided consistent with the common mode feedback of claim 14.
RELATED PATENT DOCUMENT
[0001] The present invention being is filed concurrently with U.S. patent application Ser. No. ______, which is entitled “______” (VLSI.238PA), assigned to the instant assignee and incorporated herein by reference in its entirety.