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Low Noise Amplifier

Low Noise Amplifier

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Low Noise Amplifier. DSB/SC-AM Modulation (Review). Frequency Shift Property (Review). Frequency Spectrum of DSB/SC-AM Signal (Review). If the Receiver Uses a Different Frequency to Demodulate. (Keep by using with LPF). Use an LNA Circuit to Reduce Noise. ( 11/20 ). ( 11/27 ). ( 12/4 ). - PowerPoint PPT Presentation

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Page 1: Low Noise Amplifier

Low Noise Amplifier

Page 2: Low Noise Amplifier

DSB/SC-AM Modulation (Review)

Page 3: Low Noise Amplifier

Frequency Shift Property (Review)

Page 4: Low Noise Amplifier

Frequency Spectrum of DSB/SC-AM Signal (Review)

Page 5: Low Noise Amplifier

If the Receiver Uses a Different Frequency to Demodulate

(Keep by using with LPF)

Page 6: Low Noise Amplifier

Use an LNA Circuit to Reduce Noise

(11/20) (11/27)

(12/4)

Page 7: Low Noise Amplifier

Design of a Low Noise Amplifier

1. Transistor Biasing2. Add L1 (Ls) and Lg3. Add Ls4. Adjust Lg5. Generate gate bias voltage6. Add M27. Design the output resonant network8. Reduce the quality of output tank!

Page 8: Low Noise Amplifier

Design of a Low Noise Amplifier

• Source Resistance (RS) is 50 Ω

• Assume a bias current of 1 mA• Assumed: gm/ID=20 mS/mA

Page 9: Low Noise Amplifier

Determine M1

Initial assumptions:1. VDS1=0.3 V2. VSB=0 V (DC)3. gm/ID=20 mS/mA4. ID=1 mA

Page 10: Low Noise Amplifier

gm/ID Calculation

Page 11: Low Noise Amplifier

Device Simulation

Page 12: Low Noise Amplifier

Add L1& Lg

Page 13: Low Noise Amplifier

Impedance Measurement

Our initial L1 and Lg does not produce a perfect match!

Page 14: Low Noise Amplifier

Increase Ls to Increase Real Impedance

(Increase Ls (or L1) to compensateFor CGD)

Page 15: Low Noise Amplifier

(Ls=270 pH)

(Ls=398 pH)

(The resonant frequency is still off!)

Page 16: Low Noise Amplifier

Adjust Lg

(fix at 3.5 GHz )(Reduce Lg to increase the resonant freq)

Page 17: Low Noise Amplifier

Generate the Gate Voltage

The resistor RB and CBisolate the signal pathfrom the noise of IB and MB.

Generate VGS of M1 (449.8 mV)

Insulate the DC

Page 18: Low Noise Amplifier

Find the width of MB

Page 19: Low Noise Amplifier

Determine RB

RB must be much larger than RP, the parallel equivalent resistanceOf RS. Otherwise, RB will load the input match network!

Page 20: Low Noise Amplifier

Input Bias Network!

Page 21: Low Noise Amplifier

Lg=14.85 nH, Ls=398 pH

After adding the bias MBBefore adding the bias MB

Page 22: Low Noise Amplifier

Determine M2

(Choose M2 to beIdentical to M1, for simplicity)

Also connect the gate ofM2 to VDD.

Page 23: Low Noise Amplifier

Determine the Output Impedance

Use large L to provide DC bias and open at 3.5 GHz.Use an artificially large C to provide DC isolation and a short at 3.5 GHz.Use the port to calculate the S22 and output impedance.

Page 24: Low Noise Amplifier

Output Admittance

Goal: to cancel the imaginary admittance with an inductor!An effective output capacitance of 135 fFAn effective output resistance of 1/1.107mS=900 OhmsSince we know fo, and Ceff, we can calculate Leff: 15.3 nH

Page 25: Low Noise Amplifier

Adding Output Capacitance

• A 15.3 nH inductor is too large to implement on silicon.

• We will add a 1 pF capacitor in parallel to reduce the required inductance to 1.82 nH

Page 26: Low Noise Amplifier

Schematic

(A port is used to calculate the output impedance)

903~1/1.107 mS

Page 27: Low Noise Amplifier

Comparison of Smith Chart

After adding the bias MB After the output loadThe input resonant frequencyalso shifted.

Location of S11 @ 3.5 GHz!

Page 28: Low Noise Amplifier

Input Resonant Frequency Shifted to 3.15 GHz

We probably have to reduce Lg.

Page 29: Low Noise Amplifier

Real and Imaginary Part of Output Impedance

Page 30: Low Noise Amplifier

Adjust Lg to Move the Resonant Frequency to 3. 5GHz

Page 31: Low Noise Amplifier

S11 Using Lg of 10 nH

Page 32: Low Noise Amplifier

Input S11

Reflection coefficient larger than 1!

May have to adjust reducethe quality factor of the output tank!

Page 33: Low Noise Amplifier

Adjust Output Resistance

Page 34: Low Noise Amplifier

RL of 900 Ω

Page 35: Low Noise Amplifier

Transient Simulation

Page 36: Low Noise Amplifier

Trasient Simulation

Vout=1.225-1.1745=50.5 mVVin=441.637-439.96=1.67 mVAv=30.23, 29.60 dB

Page 37: Low Noise Amplifier

Misc.

Page 38: Low Noise Amplifier

Determine Parameters Using Matlab

Page 39: Low Noise Amplifier

DC Bias Simulation

Purpose: Verify gm/ID DC parameters through simulation.

Page 40: Low Noise Amplifier

Design of a Low Noise Amplifier

• Source Resistance (RS) is 50 Ω

• Assume a bias current of 1 mA• Assumed: gm/ID=20 mS/mA