Top Banner
Operational Amplifier (2) Chapter 9
40

Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Dec 23, 2015

Download

Documents

Welcome message from author
This document is posted to help you gain knowledge. Please leave a comment to let me know what you think about it! Share it to your friends and learn new things together.
Transcript
Page 1: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Operational Amplifier (2)

Chapter 9

Page 2: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Topics

• Two-Stage Op-Amps• Gain-Boosting• Input Rage Limitation• Slew Rate• Power Supply Rejection• Noise

Page 3: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Simple Implementation of a Two-Stage Op-Amp

Stage 1

Page 4: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Two-Stage Op-Amp Employing Cascoding

High gain stage

(small voltage swings)

Page 5: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Two-Stage Op-Amp With Single-Ended Output

Page 6: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Gain-Boosting

• Idea behind gain boosting: increase the output impedance without adding more cascode devices.

Page 7: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Increasing the Output Impedance by Feedback

Io

Io is sensed by ro1,convert into voltage, subtracted Vb.

Current-Voltage Feedback.

Loop gain Increased by A1

Page 8: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Output Resistance of a Source Degenerated Transistor

Page 9: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Gain Boosting Using Feedback Analysis

Page 10: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Implementation

(Small signal gain)

Vout, min=VOD2+VGS3

Page 11: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Differential Implementation

Minimum voltageat the drain of M3:

Page 12: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Folded Cascode Gain Boosting

(Minimum Vx)

Page 13: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Various Implementations of Gain Boosting

Page 14: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Input Range Limitations

(Vin is input limited, as opposed to output limited)

Page 15: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Extension of input CM Range

As Vin, cm →VDD, the PMOS input pair turns off.As Vin, cm →0, the NMOS input pair turns off.

Page 16: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slew Rate• “Linear settling” is only applicable to

sufficiently small inputs.• With a large input step, the output

displays a linear ramp with a constant slope. The slope of the ramp is called the slew rate.

• While the small signal bandwidth of a circuit suggests a fast time-domain response, the large signal speed may be limited by the slew rate simply because the current available to charge the dominant capacitor is limited.

Page 17: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Response of a linear circuit to an input step

• The slope of the step response is proportional to the final value of the output; if we apply a larger input step, the output rises more rapidly.

Page 18: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Response of a linear circuit to an input step

Page 19: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Linear Op-amp to Step Response

Page 20: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Linear Settling in Time Domain

Page 21: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing in an Op-Amp Circuit

Page 22: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing During Low to High Transition

Page 23: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing During High to Low Transition

Page 24: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing

• Slewing is a nonlinear phenomenon. If the input doubles, the output level does not double at all points because the ramp exhibits a slope independent of the input!

Page 25: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing in telescopic Op-Amp

Page 26: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Slewing in a Folded Cascode Op-Amp

Page 27: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Power Supply Rejection

• Op-Amps are supplied from noisy lines, and must “reject” the noise adequately.

• Power Supply Rejection Ratio (PSRR) is defined as the gain from input to the output divided by the gain from the supply to the output.

Page 28: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Example (1)

If M3 and M4 carry the sameamount current, then VGS3=VGS4=VDS3=VDS4.

Therefore VX=Vout

At low frequencies, M3 carries ISS/2,VGS3 is constant for a bias current of ISS/2, therefore, noise from VDDcouples directly to VX. Since VX=Vout, the VDD noise is coupled to Vout, with a gain of unity.

The PSRR at low frequencies:

Page 29: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Example (2)

• Calculate the Low Frequency PSRR of the feedback circuit

(KVL)(KCL)

Page 30: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Example (3)

(Low frequencies analysis, C1 and C2 do not draw any current)

β=C1/(C1+C2), Vout/Vin=1/ β=1+C2/C1

(PSRR)

Page 31: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise in a Telescopic Op-Amp

(Do not contributemuch noise)

Page 32: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise in a Telescopic Op-Amp

Observation:1. Low impedance pathto output via M3.2. Divde Vout, M1 by Av

2

Account for M1 and M2(Flicker noise)

Page 33: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Rule of Thumb

• Mentally change the gate voltage of each transistor by a small amount and predict the effect at the output.

Page 34: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise in a Folded Cascode Circuit

Do not contributemuch noise

Page 35: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise Analysis

Page 36: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Equivalent CS Stages

Page 37: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise due to M7

Page 38: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise-Voltage Swing Trade-Off

If the VOD of M9 and M10 isReduced to increase output swing, the noise of M9 will increase.

Page 39: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Noise in a Two-Stage Op-Amp

Noise of stage 2 notso significant

Page 40: Operational Amplifier (2) Chapter 9. Topics Two-Stage Op-Amps Gain-Boosting Input Rage Limitation Slew Rate Power Supply Rejection Noise.

Summary

(Folded cascode, Only thermal noise is included)

(Telescopic)

(Two Stage Op-Amp)