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Three-stage op amp, AC boosting compensation
This three-stage amplifier adds a capacitor-coupled copy of the second-stage signal current. The copy helps at higher frequencies, speeding the internal response while leaving the main DC gain nearly unchanged. The improvement requires an extra current branch and careful compensation.
How it works
A three-stage op amp with one Miller capacitor and an AC-coupled boost of its second stage: a copy of that stage's signal current, taken from the mirror's gate and coupled onto o2 through a capacitor, raises the second stage's transconductance at high frequency only, pushing the non-dominant poles out without touching the DC gain.
The testbench draws Ib (2.5 µA) out of the diode MB. MT is two copies of it, so each input device carries Ib; M20 feeds Ib through Rb (116 kΩ) into the NMOS diode M21, so the cascode gate vbc sits Ib·Rb above vbn and the folding nodes rest near 0.3 V; the sinks M3/M4 are two copies of M21 each, leaving Ib for each cascode. M12 is one copy of MB, so the second stage runs at Ib, and M14 is sixteen copies of M9 on the same gate: the output stage carries about 40 µA nominally; drain-voltage differences and mismatch cause deviations from the ideal copy ratio. M15 carries the second stage's current again, Ib, and the diode M16, a copy of M9, carries it at M9's density, so b sits where o1 does.
Signal path
- First stage (M1, M2, MT, M3, M4, M5, M6, M7, M8): The PMOS pair M1/M2 on the tail MT folds into the sinks M3/M4 and the cascodes M5/M6; the mirror M7/M8 turns the two halves into one output, o1, which falls as inp rises.
- Second stage (M9, M10, M11, M12): M9 turns o1 into a current, the NMOS mirror M10/M11 copies it onto o2 against the source M12: a non-inverting stage, o2 rises with o1. It runs at one Ib, slow on purpose.
- Output stage (M13, M14): M13 on o2 sinks and M14 on o1 sources: a push-pull output, and M14, sixteen copies of M9, is the feedforward path from o1 to the output. Both paths invert, so out follows inp.
- AC boost (M15, M16, Cb): M15, a copy of the mirror M10/M11 on d2, copies the second stage's current into the diode M16; above the corner Cb passes the copy into o2, adding it to M11's.
- Miller capacitor (Cm): Cm from out to o1 sets the dominant pole.
Key relations
- DC gain:
A_0 ≈ g_m1 R_o1 · g_m9 R_o2 · g_m13 R_o3. R_o1 is set mostly by the mirror M8, R_o2 and R_o3 by the NMOS M11 and M13, whose V_A is only 2-3 V: the reason those two are long. - Unity-gain frequency:
ω_u ≈ g_m1/C_m. About 3.4 MHz with Cm at 2.5 pF. - Boosted pole pair:
ω_n ≈ √((g_m9 + g_m15) g_m13/(C_o2 C_L)). Above g_m16/C_b the copy's current reaches o2. - Damping:
2ζ/ω_n ≈ g_m16 C_L/((g_m9 + g_m15) g_m13). The diode's conductance sets how well the boosted pair is damped.
Trade-offs
- Cb: without it the boost does nothing; above about 1 pF its value changes the margins little.
- Kb: more copies raise the boost and the pole pair, but also the diode's conductance.
- Cm: larger lowers ω_u and raises the phase margin.
- At DC Cb is open: the boost costs no gain and no offset.
Testbenches and limits
- Operating point: The amplifier as a unity-gain buffer at its input common mode: the current it draws and where its output settles.
- Open-loop gain: Gain and phase with the loop closed only at DC, through a 1 TH inductor, so the operating point is the buffer's and every frequency sees the open loop.
- Step response: A 200mV step into the unity-gain buffer. Settling requires an output change of 90–110 % of the input step; static offset is reported separately. The 1 % dynamic settling band is around the final output, not a claim of 1 % DC accuracy.
- Supply rejection: A ripple on V_DD, and how much of it reaches the unity-gain buffer's output.
- Common-mode rejection: Equal AC sources on both inputs, one in the feedback path, measure closed-loop common-mode leakage. Its inverse approximates CMRR only where differential loop gain is large.
- Noise: Noise referred to the input of the unity-gain buffer: its density at 1 kHz and its total from 1 Hz to 1 MHz.
| Bench | Figure | Limit |
|---|---|---|
| Operating point | Supply current | ≤ 80 µA |
| Open-loop gain | DC open-loop gain | ≥ 100 dB |
| Open-loop gain | Unity-gain frequency | ≥ 1.5 MHz |
| Open-loop gain | Phase margin | ≥ 60 deg |
| Open-loop gain | Gain margin | ≥ 8 dB |
| Step response | Settling time, 1 % | ≤ 800 ns |
| Step response | Overshoot | ≤ 5 % |
| Supply rejection | Supply rejection at 1 kHz | ≥ 60 dB |
| Common-mode rejection | Common-mode rejection at 1 kHz | ≥ 80 dB |
Design variables and defaults
| Variable | Default |
|---|---|
| Reference current | 2.5 µA |
| W PMOS source unit (MB and its copies) | 5.4 µm |
| L PMOS source unit | 2 µm |
| W input pair (M1, M2) | 17.9 µm |
| L input pair | 1 µm |
| W NMOS sink unit (M21 and its copies) | 1.4 µm |
| L NMOS sink unit | 2 µm |
| Cascode bias resistor | 116 kΩ |
| W cascode unit (M5, M6) | 3.2 µm |
| L cascode unit | 1 µm |
| W mirror load (M7, M8) | 8.1 µm |
| L mirror load | 3 µm |
| W second-stage PMOS unit (M9, M14) | 2.5 µm |
| L second-stage PMOS unit | 500 nm |
| W second-stage mirror (M10, M11) | 5.4 µm |
| L second-stage mirror | 4 µm |
| W output NMOS unit (M13) | 5.7 µm |
| L output NMOS unit | 2 µm |
| Tail current, in Ib | 2 |
| Folding-sink current, in Ib | 2 |
| Second-stage current, in unit copies | 1 |
| Output-stage current, in second-stage currents | 16 |
| Output NMOS copies | 4 |
| Miller capacitor | 2.5 pF |
| Boost capacitor | 2 pF |
| Boost copies (M15, M16) | 1 |
| Load capacitance | 10 pF |
| Input common mode | 400 mV |
Ports
inpinputinninputoutoutputvddsupplyvssgroundibbias: the reference current, drawn out of this pin
Reference
X. Peng, W. Sansen, AC boosting compensation scheme for low-power multistage amplifiers, 2004. IEEE Journal of Solid-State Circuits, 39(11):2074-2079.
The AC boosting compensation (ACBC): one Miller capacitor and an AC-coupled path that adds a copy of the second stage's transconductance at high frequency, with a feedforward output device. The core amplifier, its bias, the boost path built from unit copies and every size are this library's, for SG13G2 at 1.2 V.
IHP SG13G2 130 nm. Simulations run in your browser; open the workbench to run this design's benches and change its variables.