Author Contributions
Conceptualization, A.N.; methodology, A.N.; validation, A.N.; formal analysis, A.N.; investigation, A.N., O.A, and D.D.C.; resources, O.A. and D.D.C.; data curation, A.N., O.A., and D.D.C.; writing—original draft preparation, A.N.; writing—review and editing, O.A. and D.D.C.; visualization, A.N.; supervision, O.A. and D.D.C.; project administration, O.A., and D.D.C.; funding acquisition, O.A., and D.D.C. All authors have read and agreed to the published version of the manuscript.
Figure 1.
The proposed universal multi-mode Gm-C filter.
Figure 1.
The proposed universal multi-mode Gm-C filter.
Figure 2.
The signal flow graph of the Gm-C proposed filter.
Figure 2.
The signal flow graph of the Gm-C proposed filter.
Figure 3.
The circuits used in the proposed Gm-C filter (a) The proposed OTA (gray branches refer to gm3 block only and in red, the terminal for the calibration. (b) Transconductance mode gmT block.
Figure 3.
The circuits used in the proposed Gm-C filter (a) The proposed OTA (gray branches refer to gm3 block only and in red, the terminal for the calibration. (b) Transconductance mode gmT block.
Figure 4.
The OTA AC responses: (a) gain response; (b) phase response.
Figure 4.
The OTA AC responses: (a) gain response; (b) phase response.
Figure 5.
The frequency responses of the proposed Gm-C filter in the various modes: (a) voltage mode; (b) transconductance mode; (c) current mode; (d) trans-resistance mode.
Figure 5.
The frequency responses of the proposed Gm-C filter in the various modes: (a) voltage mode; (b) transconductance mode; (c) current mode; (d) trans-resistance mode.
Figure 6.
Monte-Carlo simulation results for the center frequency of the band-pass filter.
Figure 6.
Monte-Carlo simulation results for the center frequency of the band-pass filter.
Figure 7.
Variations in corner technology for the band-pass frequency response.
Figure 7.
Variations in corner technology for the band-pass frequency response.
Figure 8.
Variations in supply voltage for the band-pass frequency response.
Figure 8.
Variations in supply voltage for the band-pass frequency response.
Figure 9.
Variations in temperature for the low-pass frequency response.
Figure 9.
Variations in temperature for the low-pass frequency response.
Figure 10.
Comparison between simulation and theoretical results for the proposed Gm-C filter.
Figure 10.
Comparison between simulation and theoretical results for the proposed Gm-C filter.
Figure 11.
Group delay for the proposed band-pass filter.
Figure 11.
Group delay for the proposed band-pass filter.
Figure 12.
Transient simulation results for the proposed filter: (a) input (10 Hz); (b) output.
Figure 12.
Transient simulation results for the proposed filter: (a) input (10 Hz); (b) output.
Figure 13.
Transient simulation results for the proposed band-pass and high-pass filters at the center frequency (462 Hz): (a) input; (b) output.
Figure 13.
Transient simulation results for the proposed band-pass and high-pass filters at the center frequency (462 Hz): (a) input; (b) output.
Figure 14.
THD versus voltage input amplitudes.
Figure 14.
THD versus voltage input amplitudes.
Figure 15.
Modeling of the noise equivalent circuit for the proposed universal filter.
Figure 15.
Modeling of the noise equivalent circuit for the proposed universal filter.
Table 1.
The filtering functions of the proposed universal multi-mode Gm-C filter.
Table 1.
The filtering functions of the proposed universal multi-mode Gm-C filter.
Filtering Function | Input for Current and Trans-Resistance Modes | Input for Voltage and Transconductance Modes |
---|
LP | iin3 | −vin1 = −vin2 = vin3 |
HP | iin1 | vin1 |
BP | iin2 | vin2 |
BR | iin1 = iin3 | −vin2 = vin3 |
AP | iin1 = iin2 = iin3 | vin3 |
Table 2.
The aspect ratio of the OTA transistors employed in the proposed filter.
Table 2.
The aspect ratio of the OTA transistors employed in the proposed filter.
Aspect Ratio of OTA |
---|
Transistor | W/L [µm/µm] |
---|
M1, M3, M5, M7, M10, M12 | 1/0.3 = 3.33 |
M2, M4, M6, M8, M9, M11 | 4/0.3 = 13.33 |
M13, M14 | 3/0.3 = 10 |
M15–M22 | 3/1 = 3 |
M29–M32 | 1/0.18 = 5.56 |
Aspect ratio of transconductance mode gmT block |
Transistor | W/L [µm/µm] |
M23, M25, M28 | 1/0.18 = 5.56 |
M24, M26, M27 | 4/0.18 = 22.22 |
Table 3.
Characteristics of the proposed OTA used in the proposed filter.
Table 3.
Characteristics of the proposed OTA used in the proposed filter.
Specification | Value |
---|
Supply voltage | 0.5V |
DC gain | 46.6 dB |
Phase margin | 86° |
GBW | 17.5 kHz |
CMRR | 48 dB |
PSRR | 44 dB |
Input-referred noise | |
Power consumption | 6.3 nW |
CL | 1 pF |
Table 4.
The corner variations of the proposed Gm-C design.
Table 4.
The corner variations of the proposed Gm-C design.
| SS | SF | TT | FS | FF |
---|
Power consumption | 8.3 nW | 94.5 nW | 32 nW | 10 nW | 118 nW |
Center frequency | 132 Hz | 1.34 kHz | 462 Hz | 129 Hz | 1.43 kHz |
Table 5.
The supply voltage variations (−/+10%) of the proposed Gm-C design.
Table 5.
The supply voltage variations (−/+10%) of the proposed Gm-C design.
| 0.45 V | 0.5 V | 0.55 V |
---|
Power consumption | 42 nW | 32 nW | 32.7 nW |
Center frequency | 693.4 Hz | 462 Hz | 305.5 Hz |
Table 6.
The temperature variations of the proposed Gm-C design.
Table 6.
The temperature variations of the proposed Gm-C design.
| 0 °C | 10 °C | 27 °C | 40 °C |
---|
Power consumption | 10 nW | 16 nW | 32 nW | 41.5 nW |
Center frequency | 164.5 Hz | 247 Hz | 462 Hz | 760 Hz |
Table 7.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL across the corner process.
Table 7.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL across the corner process.
| SS | SF | TT | FS | FF |
---|
Body bias of M2, M4, M6, M8, M9, M11 | 0.368 V | 0. 4 V | 0.5 V | 0.368 V | 0.4 V |
Power consumption | 28.4 nW | 31 nW | 32 nW | 32.2 nW | 38 nW |
Center frequency | 462 Hz | 462 Hz | 462 Hz | 462 Hz | 462 Hz |
Table 8.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL for supply voltage changing +/− 10%.
Table 8.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL for supply voltage changing +/− 10%.
| 0.45 V | 0.5 V | 0.55 V |
---|
Body bias of M2, M4, M6, M8, M9, M11 | 0.498 V | 0.5 V | 0.498 V |
Power consumption | 27.8 nW | 32 nW | 43.4 nW |
Center frequency | 462 Hz | 462 Hz | 462 Hz |
Table 9.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL at different temperatures.
Table 9.
Proposed filter’s center frequency regulation using the body-bias tuning VCAL at different temperatures.
| 0 °C | 10 °C | 27 °C | 40 °C |
---|
Body bias of M2, M4, M6, M8, M9, M11 | 0.39 V | 0.43 V | 0.5 V | 0.45 V |
Power consumption | 28 nW | 29.3 nW | 32 nW | 33 nW |
Center frequency | 462 Hz | 462 Hz | 462 Hz | 462 Hz |
Table 10.
THD performance of the proposed filter for different signal amplitudes.
Table 10.
THD performance of the proposed filter for different signal amplitudes.
Input Voltage Amplitude (mVPP) | THD% at 10 Hz |
---|
LP | BP | BR | AP | HP |
---|
40 | 0.68 | 1 | 0.7 | 0.3 | 1.7 |
60 | 1 | 1.6 | 1.08 | 0.5 | 2.4 |
80 | 1.55 | 2.5 | 1.55 | 0.7 | 3.4 |
100 | 2 | 3.6 | 2 | 1 | 5 |
120 | 3 | 5 | 2.9 | 1.5 | 7 |
Table 11.
THD performance of the proposed filter for various corner parameters.
Table 11.
THD performance of the proposed filter for various corner parameters.
Corner Process | THD% at 10 Hz |
---|
LP | BP | BR | AP | HP |
---|
SS | 2.3 | 3.7 | 2.4 | 0.2 | 2.8 |
SF | 4.8 | 6.6 | 4.8 | 4.7 | 8 |
FS | 2 | 3.3 | 2.2 | 0.17 | 2 |
FF | 0.5 | 0.3 | 0.48 | 0.47 | 0.94 |
TT | 0.68 | 1 | 0.7 | 0.3 | 1.7 |
Table 12.
Gm-C filter’s state-of-the-art comparison referring to their band-pass’ central frequency.
Table 12.
Gm-C filter’s state-of-the-art comparison referring to their band-pass’ central frequency.
| [31] | [32] | [33] | [34] | [35] | [36] | [37] | This Work |
---|
Supply voltage [V] | 0.6 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 | 0.5 |
Universal | Yes | Yes | Yes | Yes | Yes | Yes | Yes | Yes |
Multi-mode | Yes | Voltage | Yes | Yes | Yes | Voltage | Voltage | Yes |
Filter order | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 |
Center frequency [Hz] | 5000 | 254 | 211 | 323 | 114 | 153 | 10 | 462 |
Dynamic range [dB] | 53.2 | 49.7 | 58.23 | 53.2 | 53.2 | 50 | 63 | 43.59 |
Rms input-refer. noise [µVrms] | 155 | 116 | 130 | 108 | 208 | 220 | 45 | 93.5 |
Power consumption [µW] | 5.77 | 0.616 | 0.281 | 0.646 | 0.058 | 0.037 | 0.053 | 0.032 |
] | 1.26 | 3.96 | 0.816 | 2.187 | 0.556 | 2.41 | 1.88 | 0.229 |