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Transcript
11/30/2010
Fundamentals of Microelectronics
CH1
CH2
CH3
CH4
CH5
CH6
CH7
CH8
Why Microelectronics?
Basic Physics of Semiconductors
Diode Circuits
Physics of Bipolar Transistors
Bipolar Amplifiers
Physics of MOS Transistors
CMOS Amplifiers
Operational Amplifier As A Black Box
1
Chapter 7
CMOS Amplifiers
7.1 General Considerations
7.2 Common-Source Stage
7.3 Common-Gate Stage
7.4 Source Follower
7.5 Summary and Additional Examples
2
1
11/30/2010
Chapter Outline
CH7 CMOS Amplifiers
3
MOS Biasing
 RV

VGS = −(V1 −VTH ) + V12 + 2V1 2 DD −VTH 
 R1 + R2

1
V1 =
W
µnCox RS
L
Voltage at X is determined by VDD, R1, and R2.
VGS can be found using the equation above, and ID can be
found by using the NMOS current equation.
CH7 CMOS Amplifiers
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11/30/2010
Self-Biased MOS Stage
I D RD + VGS + RS I D = VDD
The circuit above is analyzed by noting M1 is in saturation
and no potential drop appears across RG.
CH7 CMOS Amplifiers
5
Current Sources
When in saturation region, a MOSFET behaves as a current
source.
NMOS draws current from a point to ground (sinks current),
whereas PMOS draws current from VDD to a point (sources
current).
CH7 CMOS Amplifiers
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11/30/2010
Common-Source Stage
λ=0
Av = −g m RD
Av = − 2µnCox
W
I D RD
L
CH7 CMOS Amplifiers
7
Operation in Saturation
RD I D < VDD − (VGS −VTH )
In order to maintain operation in saturation, Vout cannot fall
below Vin by more than one threshold voltage.
The condition above ensures operation in saturation.
CH7 CMOS Amplifiers
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4
11/30/2010
CS Stage with λ =0
Av = − g m RL
Rin = ∞
Rout = RL
9
CS Stage with λ ≠ 0
Av = −gm ( RL || rO )
Rin = ∞
Rout = RL || rO
However, Early effect and channel length modulation affect
CE and CS stages in a similar manner.
CH7 CMOS Amplifiers
10
5
11/30/2010
CS Gain Variation with Channel Length
W
L ∝ 2µnCoxWL
ID
λ ID
2µnCox
Av =
Since λ is inversely proportional to L, the voltage gain
actually becomes proportional to the square root of L.
CH7 CMOS Amplifiers
11
CS Stage with Current-Source Load
Av = − g m1 (rO1 || rO 2 )
Rout = rO1 || rO 2
To alleviate the headroom problem, an active currentsource load is used.
This is advantageous because a current-source has a high
output resistance and can tolerate a small voltage drop
across it.
CH7 CMOS Amplifiers
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11/30/2010
PMOS CS Stage with NMOS as Load
Av = −gm2(rO1 || rO2 )
Similarly, with PMOS as input stage and NMOS as the load,
the voltage gain is the same as before.
CH7 CMOS Amplifiers
13
CS Stage with Diode-Connected Load
Av = −gm1 ⋅
1
(W / L)1
=−
gm2
(W / L)2
 1

Av = −gm1 || rO2 || rO1 
 gm2

Lower gain, but less dependent on process parameters.
CH7 CMOS Amplifiers
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11/30/2010
CS Stage with Diode-Connected PMOS Device
 1

Av = − g m 2 
|| ro1 || ro 2 
 g m1

Note that PMOS circuit symbol is usually drawn with the
source on top of the drain.
15
CS Stage with Degeneration
Av = −
RD
1
+ RS
gm
λ =0
Similar to bipolar counterpart, when a CS stage is
degenerated, its gain, I/O impedances, and linearity change.
CH7 CMOS Amplifiers
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Example of CS Stage with Degeneration
Av = −
RD
1
1
+
gm1 gm2
A diode-connected device degenerates a CS stage.
CH7 CMOS Amplifiers
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CS Stage with Gate Resistance
VR = 0
G
Since at low frequencies, the gate conducts no current,
gate resistance does not affect the gain or I/O impedances.
CH7 CMOS Amplifiers
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11/30/2010
Output Impedance of CS Stage with Degeneration
rout ≈ gmrO RS + rO
Similar to the bipolar counterpart, degeneration boosts
output impedance.
CH7 CMOS Amplifiers
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Output Impedance Example (I)

1  1
Rout = rO11+ gm1  +
gm2  gm2

When 1/gm is parallel with rO2, we often just consider 1/gm.
CH7 CMOS Amplifiers
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Output Impedance Example (II)
Rout ≈ g m1rO1rO 2 + rO1
In this example, the impedance that degenerates the CS
stage is rO, instead of 1/gm in the previous example.
CH7 CMOS Amplifiers
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CS Core with Biasing
Av =
R1 || R2
− RD
R1 || R2
⋅
, Av = −
gm RD
RG + R1 || R2 1 + R
RG + R1 || R2
S
gm
Degeneration is used to stabilize bias point, and a bypass
capacitor can be used to obtain a larger small-signal
voltage gain at the frequency of interest.
CH7 CMOS Amplifiers
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Common-Gate Stage
Av = gmRD
Common-gate stage is similar to common-base stage: a
rise in input causes a rise in output. So the gain is positive.
CH7 CMOS Amplifiers
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Signal Levels in CG Stage
In order to maintain M1 in saturation, the signal swing at Vout
cannot fall below Vb-VTH.
CH7 CMOS Amplifiers
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I/O Impedances of CG Stage
Rin =
1
gm
λ =0
Rout = RD
The input and output impedances of CG stage are similar
to those of CB stage.
CH7 CMOS Amplifiers
25
CG Stage with Source Resistance
Av =
RD
1
+ RS
gm
When a source resistance is present, the voltage gain is
equal to that of a CS stage with degeneration, only positive.
CH7 CMOS Amplifiers
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11/30/2010
Generalized CG Behavior
Rout = (1 + g m rO )RS + rO
When a gate resistance is present it does not affect the gain
and I/O impedances since there is no potential drop across
it ( at low frequencies).
The output impedance of a CG stage with source resistance
is identical to that of CS stage with degeneration.
CH7 CMOS Amplifiers
27
Example of CG Stage
vout
gm1RD
=
vin 1 + ( gm1 + gm2 )RS


 1

Rout ≈ gm1rO1
|| RS  + rO1  || RD
 gm 2



Diode-connected M2 acts as a resistor to provide the bias
current.
CH7 CMOS Amplifiers
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CG Stage with Biasing
vout
R || (1/ gm )
= 3
⋅ gmRD
vin R3 || (1/ gm ) + RS
R1 and R2 provide gate bias voltage, and R3 provides a path
for DC bias current of M1 to flow to ground.
CH7 CMOS Amplifiers
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Source Follower Stage
Av < 1
CH7 CMOS Amplifiers
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11/30/2010
Source Follower Core
vout
r || R
= O L
vin 1 +r || R
O
L
gm
Similar to the emitter follower, the source follower can be
analyzed as a resistor divider.
CH7 CMOS Amplifiers
31
Source Follower Example
Av =
rO1 || rO 2
1
+ rO1 || rO 2
g m1
In this example, M2 acts as a current source.
CH7 CMOS Amplifiers
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11/30/2010
Output Resistance of Source Follower
Rout =
1
1
|| rO || RL ≈ || RL
gm
gm
The output impedance of a source follower is relatively low,
whereas the input impedance is infinite ( at low
frequencies); thus, a good candidate as a buffer.
CH7 CMOS Amplifiers
33
Source Follower with Biasing
1
W
2
ID = µnCox (VDD − I DRS −VTH )
2
L
RG sets the gate voltage to VDD, whereas RS sets the drain
current.
The quadratic equation above can be solved for ID.
CH7 CMOS Amplifiers
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11/30/2010
Supply-Independent Biasing
If Rs is replaced by a current source, drain current ID
becomes independent of supply voltage.
CH7 CMOS Amplifiers
35
Example of a CS Stage (I)
 1

Av = − g m1 
|| rO1 || rO 2 || rO 3 
 g m3

1
Rout =
|| rO1 || rO 2 || rO3
g m3
M1 acts as the input device and M2, M3 as the load.
CH7 CMOS Amplifiers
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11/30/2010
Example of a CS Stage (II)
Av = −
rO2
1
1
+ || rO3
gm1 gm3
M1 acts as the input device, M3 as the source resistance,
and M2 as the load.
CH7 CMOS Amplifiers
37
Examples of CS and CG Stages
Av _CS = −gm2 [(1+ gm1rO1 )RS + rO1 ] || rO1
Av _ CG =
rO 2
1
+ RS
gm
With the input connected to different locations, the two
circuits, although identical in other aspects, behave
differently.
CH7 CMOS Amplifiers
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11/30/2010
Example of a Composite Stage (I)
Av =
RD
1
1
+
gm1 gm2
By replacing the left side with a Thevenin equivalent, and
recognizing the right side is actually a CG stage, the
voltage gain can be easily obtained.
CH7 CMOS Amplifiers
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Example of a Composite Stage (II)
vout2
vin
1
|| rO3 || rO4
g m3
=−
1
1
|| rO 2 +
gm2
gm1
This example shows that by probing different places in a
circuit, different types of output can be obtained.
Vout1 is a result of M1 acting as a source follower whereas
Vout2 is a result of M1 acting as a CS stage with
degeneration.
CH7 CMOS Amplifiers
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20