The present invention relates generally to filters, and more particularly to tunable transconductance-capacitance (Gm-C) filters.
Transconductance-capacitance (Gm-C) filters offer attractive performance characteristics. Thus, the use of Gm-C filters is widespread and pervasive in radio communications and signal processing. Analog Gm-C filters are constructed using operational transconductance amplifiers (OTAs). OTAs operate to translate a voltage input signal into a current output signal. An example balanced (differential output) OTA is shown in
I
+
=G
m(V+−V−)
I−=G
m(V−−V+)
Various approaches are known to construct OTAs such as using cascodes or differential architectures. A simple analog transconductance-capacitance (Gm-C) filter may be constructed using a single-ended OTA as shown in
Although such independence is desirable, conventional tunable Gm-C filters are still sensitive to power supply variations and suffer from non-idealities. Accordingly, there is a need in the art for improved tunable Gm-C filters that are more robust to variations in process corner, power supply, and temperature.
In accordance with one aspect of the invention, a transconductance-capacitance (Gm-C) filter is provided that includes: a plurality of operational transconductance amplifiers (OTAs), wherein a first one of the OTAs has a first transconductance and the remaining ones of the OTAs have transconductances that are proportional to the first transconductance, and a bias circuit for biasing the first transconductance to a desired value responsive to a clock frequency, the bias circuit including a switched capacitor circuit generating a resistance inversely proportional to the clock frequency, wherein the desired transconductance value is proportional to the clock frequency.
In accordance with another aspect of the invention, a transconductance-capacitance (Gm-C) filter is provided that includes: a plurality of operational transconductance amplifiers (OTAs), wherein each OTA includes a differential pair of transistors providing a tail current to a third transistor having a transconductance gm, and a bias circuit for biasing a gate of a given one of the third transistors with a control voltage, the bias circuit including a switched capacitor circuit such that a transfer function for the Gm-C filter is proportional to a ratio of capacitances and is independent of process corner variations.
In accordance with yet another aspect of the invention, a bias circuit to bias the transconductance gm of a first transistor within a Gm-C filter is provided that includes: a second transistor having a width-to-length ratio that is a factor X larger than a width-to-length ratio of the first transistor, the second transistor coupling to ground through a switched capacitor circuit such that gm is proportional to (1−1/X1/2).
The scope of the invention is defined by the claims, which are incorporated into this section by reference. A more complete understanding of embodiments of the present invention will be afforded to those skilled in the art, as well as a realization of additional advantages thereof, by a consideration of the following detailed description of one or more embodiments. Reference will be made to the appended sheets of drawings that will first be described briefly.
a is a schematic diagram of an operational transconductance amplifier (OTA).
b is a schematic diagram of a conventional transconductance-capacitance (Gm-C) filter.
a is a circuit diagram illustrating the equivalence of a switched capacitor circuit to a resistor.
b is a circuit diagram of a switched capacitor circuit adapted for greater robustness to parasitic effects.
Embodiments of the present invention and their advantages are best understood by referring to the detailed description that follows. It should be appreciated that like reference numerals are used to identify like elements illustrated in one or more of the figures.
Reference will now be made in detail to one or more embodiments of the invention. While the invention will be described with respect to these embodiments, it should be understood that the invention is not limited to any particular embodiment. On the contrary, the invention includes alternatives, modifications, and equivalents as may come within the spirit and scope of the appended claims. Furthermore, in the following description, numerous specific details are set forth to provide a thorough understanding of the invention. The invention may be practiced without some or all of these specific details. In other instances, well-known structures and principles of operation have not been described in detail to avoid obscuring the invention.
To provide a tunable Gm-C filter that self-compensates with regard to process corner variations, power supply variations, and temperature variations, a switched capacitor circuit is used to tune the transconductance Gm of one of more of the OTAs included within the Gm-C filter. In that regard, a biquad second order Gm-C filter such as filter 100 shown in
This relatively complex behavior can be simplified as follows. Although transconductances have large variations in their absolute values, relative transconductance values can be set quite accurately by the ratio of the OTA transistor widths (provided the same channel lengths are used for all devices). Thus, an arbitrary OTA such as OTA 105 having a transconductance gm1 may be used to define the transconductance of the remaining OTAs. For example, the transconductance gm2 for OTA 110 may be defined as Km2-gm1, the transconductance gm3 for OTA 115 may be defined as Km3gm1, and so on. In general, the ith transconductance can be expressed in terms of the first OTA as
G
mi
=K
mi
G
mi (2)
Similarly, the sum of the capacitances C3 and C2 can be defined in terms of C1 using a constant K as
C
3
+C
2
=KC
1 (3)
Using equations (2) and (3), equation (1) can be simplified as follows
From equation (4), it can be seen that if just the ratio of Gm1/C1 is tuned to be self-compensating with regard to variations in power supply, process corner, and temperature, then the remaining transconductance/capacitance ratios need no tuning since these ratios can be conventionally manufactured to an accuracy of approximately one percent.
Although the above simplification was described with regard to the biquad filter 100 of
The following discussion will show how to generate the bias voltage Vcntl such that the ratio of Gm/CL for the OTA is self-compensating. This self compensation will rely on the use of a switched capacitor circuit to produce a desired resistance. As known from Ohm's law, a voltage potential VA−VB applied across a resistor of resistance R will produce a current I equaling (VA−VB)/R. However, as seen in
R
m=1/fckCck. (5)
The equivalence of a switched capacitor circuit to provide a desired resistance is made more precise by using the additional switches S3 and S4 as shown in
The incorporation of a switched capacitor circuit into a bias circuit 500 as shown in
g
m4=2/Rm(1−1/Sqrt(X)) (6)
Substitution of equation (5) into equation (6) allows the transconductance to be expressed as
g
m4=2(1−1/Sqrt(X))fckCck (7)
It will be appreciated that the switched capacitor circuit 505 may be made more robust as discussed with regard to
Referring back to
G
m
/C
L=2A(1−1/Sqrt(X))fckCck/CL (8)
Referring again to
It will be obvious to those skilled in the art that various changes and modifications may be made without departing from this invention in its broader aspects. The appended claims encompass all such changes and modifications as fall within the true spirit and scope of this invention.