Eca unit 2

1
RAGHU INSTITUTE OF TECHNOLOGY
AUTONOMOUS
DEPARTMENT OF ELECTRONICS & COMMUNICATION
ENGINEERING
II BTECH II SEMESTER
ELECTRONIC CIRCUIT ANALYSIS
UNIT II
Prepared By:
Mrs. SUSHMI NAIDU,
Mr. M. PAVAN KUMAR,
Assistant Professors
SUSHMINAIDU, M.PAVAN ECA Dept of ECE RIT‖ ‖ ‖

2
Contents:
• Multistage Amplifier
• Multistage Amplifier Configuration
• Cascade Amplifier Connection
 Example
• Cascode Amplifier Connection
 Example
• Darlington Connection
 Example
• Bootstrap Bias Amplifier
• Two Stage FET Amplifier
• Differential Amplifier

3
 References
• “Integrated Electronics”, J. Milliman and C.C. Halkias, Tata
McGraw Hill, 1972
• “Electronic Circuit Analysis- B.V. Rao, K.R.Rjeswari,
P.C.R.Pantulu- Pearson publication
• “Electronic Devices and Circuits” – Salivahanan, Suresh Kumar,
A.Vallavaraj, TATA McGraw Hill
• www.nptel.ac.in
• www.nesoacademy.org
• www.tutorialspoint.com

MULTISTAGE AMPLIFIERS
Two or more amplifiers can be connected to increase the gain of an ac
signal. The overall gain can be calculated by simply multiplying each
gain together.
A’v = Av1Av2Av3 ……
4

Example
Find Vout
Av1 = 5 Av2 = 10 Av3 = 6 Avn = 8
Vin = 5 mV
5
Sol:- Av=Vout/Vin
Av=Av1*Av2*Av3............*Avn

• Many applications cannot be handled with single-
transistor amplifiers in order to meet the specification of
a given amplification factor, input resistance and output
resistance
• As a solution – transistor amplifier circuits can be
connected in series or cascaded amplifiers
• This can be done either to increase the overall small-
signal voltage gain or provide an overall voltage gain
greater than 1 with a very low output resistance
Multistage Amplifiers
7

Multistage Amplifier Configuration
R C1 R C2R B
Q 1
Q 2
v i
v o
Cascade /RC coupling
8

Cascode
R 1
R 2
R 3
R L
Q 2
Q 1
v i
v o
9

Darlington/Direct coupling
v i
v o
R 1 R 2
Q 1
Q 2
10

Transformer coupling
R 1
T
Q 1
Q 2
v i
v o
11

 The most widely used method
 Coupling a signal from one stage to the another
stage and block dc voltage from one stage to the
another stage
 The signal developed across the collector resistor
of each stage is coupled into the base of the next
stage
 The overall gain = product of the individual gain
 Cascade connection
12

R 1
R 2
R 3
R 4
R C 1
R E 1
R C 2
R E 2
VCC +20 V
15 kΩ
15 kΩ
4.7 kΩ 4.7 kΩ
2.2 kΩ2.2 kΩ
1 kΩ1 kΩ
β 1 = β 2 = 200
ro 1 = ro 2 = ∞
R i
R o
Example 1
Draw the AC equivalent circuit and calculate Av, Ri and Ro.
13

DC analysis
The circuit under DC
condition (stage 1 and
stage 2 are identical)
Solution
14

Applying Thevenin’s theorem, the circuit becomes;
A/V153.0
k307.1
mA979.3
μA89.19
21
21
21
21
==
Ω==
==
==
mm
CQCQ
BQBQ
gg
rr
II
II
ππ
15

R B1 r π 1 r π 2
gm 1v π 1 gm 2v π 2
R B2R C 1
+
v π 1
-
+
v π 2
-
R C 2
V i V oB1
E1
C1 B2
E2
C2
AC analysis
211 // RRRB = 432 // RRRB =
The small-signal equivalent circuit (mid-band);
16

222 Cmo RvgV π−=
22
2
2 Cm
o
Rg
v
V
A −==
π
( )221112 //// πππ rRRvgv BCm−=
[ ]iVv =1π
( )2212
2
1 //// π
π
rRRg
V
v
A BCm
i
−==
( )2211 //// πrRRVg BCim−=
17

( )22122121 //// πrRRRggAAA BCCmm==
Ω==== k579.37.4//15// 4321 RRRR BB
Ω== 667307.1//579.3//2.2//// 221 πrRR BC
V/V343506672200153.0153.0 =×××=A
Substituting values;
The small-signal voltage gain;
18
Ω=== k957.0307.1//579.3// 11 πrRR Bin
The input resistance;
The output resistance;
Ω== k2.22Co RR

 A cascode connection has one transistor on top of (in
series with) another
 The i/p applied to a C-E amp. (Q1) whose output is used to
drive a C-B amp. (Q2)
 The o/p signal current of Q1 is the i/p signal of Q2
 The advantage: provides a high i/p impedance with low
voltage gain to ensure the i/p Miller capacitance is at a
min. with the C-B stage providing good high freq. operation
 Cascode connection
19

Cascode amplifier
20
Example 2

May be performed
using the following
figure;
DC analysis
Q 1
Q 2
R 1 R C
V CC
R 2
R 3 R E
21

CCB
BB
VI
I
IR
I
IRIR =





−
+
−+





+
−+ 1
2
11
13
2
11
1211
11 β
β
β
β
The equations are (assuming VBE = 0.7 V for both BJT’s);
( ) 111
2
11
13 17.0
1
BEB
B
IRI
I
IR ++=





−
+
− β
β
β
The above equations may solved for the two unknown
currents namely I1 and IB1.
22

AC analysis
The equivalent circuit under AC condition
R BB
R L '
Q 1
Q 2
vs
vo
32 // RRRBB = LCL RRR //'=
23

The ac equivalent circuit using hybrid-π model for BJT
rπ 1 rπ 2
+
v π 1
-
+
vπ 2
-
g mvπ 2
g mv π 1
R BB
R L '
v s
v o
B1
E1
C1 E2
B2
C2
LCL RRR //'=
32 // RRRBB =
24

'22 Lmo Rvgv π−=
At node E2;
22
2
2
11 π
π
π
π vg
r
v
vg mm += Or; 22
121
2
1 π
ππ
π
rg
vrg
v
m
m
+
=
Substituting in (1);
sLmL
m
mm
o vRgvR
rg
rgg
v '
1
'
1 2
2
11
22
221








+
−=







+
−=
β
β
π
π
π
25
When β2 >> 1
'
21
2
1 LRmg
sv
ov
vA 







+
−==
β
β
The small-signal voltage gain;
'1 LRmgvA −≅

Darlington connection
Darlington pair
Internal connection;
• Collectors of Q1 and Q2;
• Emitter of Q1 and base
of Q2.
Q 1
Q 2
b1
b2e1
e2
c1
c2
B
C
E
I B
I C
Provides high current
gain : IC ≅ β2
IB
26

Currents in darlington pair
Q 1
Q 2
β 1Ι Β 1
Ι Β 1
Ι E 1 = (1+β 1)Ι Β 1 = Ι Β 2
Ι E 2 = (1+β 2)Ι Β 2 =(1+β 1)(1+β 2)Ι Β 1
Ι C 2 = β 2Ι Β 2 =β 2(1+β 1)Ι Β 1
Ι C 1 + ΙC 2 = [β 1 + β 2(1+β 1)]Ι Β 1
27

If β1 = β2 = β and assuming β is large;
Q 1
Q 2
β Ι Β 1
Ι Β 1
Ι E 1 = (1+β )Ι Β 1 = Ι Β 2
Ι E 2 = (1+β )Ι Β 2 =(1+β )2
Ι Β 1
Ι C 2 = β Ι Β 2 =β (1+β )Ι Β 1
Ι C 1 + ΙC 2 ≅ β 2
Ι Β 1
28

Q 1
Q 2
b1
b2e1
e2
c1
c2
B
C
E
Hybrid-π model (assuming ro1 = ro2 = ∞);
rπ 1
rπ 2
+
Vπ 1
-
+
Vπ 2
-
g m 2Vπ 2
g m 1Vπ 1
b1
b2
c2
e1
e2
c1
≡
29

Darlington pair
configuration
Darlington configuration provides;
• Increased current;
• High input resistance.
30

Small-signal equivalent circuit
31

Input voltage source
is transformed into
current source
11 ππ rIV i=
iimm IIrgVg 11111 βππ ==
( ) 212 1 ππ β rIV i+=
( ) iiib IIII 112 1 ββ +=+=
( ) ii
mmo
II
VgVgI
121
2211
1 βββ
ππ
++=
+=
( )
( ) i
im
m
I
rIg
Vg
12
212
22
1
1
ββ
β π
π
+=
+=
21 ππ VVVi +=
32

11 ππ rIV i= iimm IIrgVg 11111 βππ ==
( ) iiib IIII 112 1 ββ +=+= ( ) 21222 1 πππ β rIrIV ib +==
( ) ( ) iimm IrIgVg 1221222 11 βββ ππ +=+=
( ) iimmo IIVgVgI 1212211 1 βββππ ++=+=
( ) 21121 1 βββββ ≅++==
i
o
i
I
I
A
The current gain is;
33
( ) 21121 1 ππππ β rIrIVVV iii ++=+=
The input resistance is;
( ) 211 1 ππ β rr
I
V
R
i
i
i ++==

Example 3
Determine the;
(a) Q-point for Q1 and Q2;
(b) voltage gain vo/vs;
(c) input resistance Ris;
(d) output resistance Ro
10021 == ββ
∞== 21 AA VV
V7.021 == BEBE VV
34

DC equivalent circuit
Using Thevenin’s theorem;
V72.2
21
2
=





+
=
RR
R
VV CCBB
Ω=
+
= k91
21
21
RR
RR
RBB
R 1
R 2
R C
R E 2
335 kΩ
125 kΩ
2.2 kΩ
1 kΩ
V CC +10 V
Q1
Q2
(a) Determination of Q-points
35

The circuit becomes;
( ) 112 1 BEB III +== β ( ) ( ) 1
2
22 11 BBE III +=+= ββ
RC 2.2 kΩ
R E 2 1 kΩ
R BB
VBB
+10 VV CC
+2.72 V
91 kΩ
Q1
Q2
IB 1
IB 2
IC 1
IC 2
IE 2
10021 == ββ
∞== 21 AA VV
V7.021 == BEBE VV
36

( ) BBBEBEBBB VIRVIR =+++ 1
2
21 12 β
μA8.121 =CI
mA3.12 =EI
μA93.1221 == BE II
mA293.12 =CI
( ) 72.21100k17.02k91 1
2
1 =++×+ BB II
μA128.010
10292
32.1 3
1 =×= −
BI
V3.113.12 =×=EV
( ) V127.70.01281.2932.21021 =+−== CC VV
V27.03.11 =+=EV
37

V127.52127.7111 =−=−= ECCE VVV
V827.53.1127.7222 =−=−= ECCE VVV
(a) The Q-points are;
V827.5mA;293.1:
V127.5μA;8.12:
222
111
==
==
CEQCQ
CEQCQ
VIQ
VIQ
38

The equivalent circuit under AC condition
R BB
R C
Q1
Q2
vs
R is
vo
R o
(b) The small-signal voltage gain (mid-band);
39

Using the hybrid-π model of transistor, the equivalent
circuit becomes;
40

Ω=
×
== −
k25.203
10492.0
100
3
1
1
1
mg
r
β
π
Ω=
×
== −
k2
1073.49
100
3
2
2
2
mg
r
β
π
mA/V492.0
mV26
A8.121
1 ===
µ
T
CQ
m
V
I
g
mA/V73.49
mV26
mA293.12
2 ===
T
CQ
m
V
I
g
41

( ) Cmmo RVgVgv 2211 ππ +−=
121
1
2
211
1
1
2 ππ
π
π
ππ
π
π
π Vrg
r
r
rVg
r
V
V mm 





+=





+=
( ) 1
1
2
12 1 π
π
π
π β V
r
r
V +=
( )
1
1
211 1
π
π
βββ
VR
r
v Co 




 ++
−=
Substituting for Vπ2 in the expression for vo and simplifying;
42

21 ππ VVvs += ( ) 1
1
2
12 1 π
π
π
π β V
r
r
V +=
Substituting for Vπ2;
( ) 1
1
2
11 1 π
π
π
π β V
r
r
Vvs ++=
( )
1
1
211 1
π
π
βββ
VR
r
v Co 




 ++
−=
( )
( ) 1
1
2
11
1
1
211
1
1
π
π
π
π
π
π
β
βββ
V
r
r
V
VR
r
v
v
A
C
s
o
v
++





 ++
−
==
43

[ ]
( )2100225.203
2.2100100100 2
×++
++
−=vA V/V4.55−=vA
44
Simplifying;
( )[ ]
( ) 211
211
1
1
ππ β
βββ
rr
R
v
v
A C
s
o
v
++
++
−==

R BB R C
rπ 1
rπ 2
g m 1v π 1
g m 2vπ 2
+
vπ 1
−
+
v π 2
−
+
vs
-
vo
R is R oi i
i oi b
R ib
b
s
ib
i
v
R =ibBBis RRR //=
45

21 ππ VVvs +=
11 ππ riV b=
( ) ( )
( ) b
bmbmb
ir
rirgirVgiV
21
2112112
1 π
πππππ
β+=
+=+=
( ) bbs irirv 211 1 ππ β++=
( ) 211 1 ππ β rr
i
v
R
b
s
ib ++==
Substituting values; ( ) Ω=++= k40521001203ibR
46
40591
40591
//
+
×
== ibBBis RRR
Ω= k6.73isR
Ω== k2.2Co RR

47
Bootstrap Bias circuit
This circuit is a variation of the "voltage divider bias", with the addition of the
"bootstrapping components" R3 and C. The author explains that R3 and C are
used in order to achieve higher input resistance

48
•With the addition of bootstrapping components (R3 and C) and assuming
that C is of negligible reactance at signal frequencies, the AC value of the
emitter resistance is given by:
R E=RE||R1||R2′
•In practice this represents a small reduction in RE.
•Now, the voltage gain of an emitter follower with emitter resistance R
E is A=R E/(re+R E), which is very close to unity. Hence, with an input′ ′ ′
signal vin applied to the base, the signal with appears at the emitter (Avin) is
applied to the lower end of R3.
•Therefore, the signal voltage appearing across R3 is (1−A)vin, very much less
than the full input signal, and R3 now appears to have an effective value (for
AC signals) of:
R 3=R3/(1−A) R3′ ≫

49
Characteristics of different combination of configuration of
transistor to form a multistage amplifier

50
• The analogy we observed between single stage BJT and FET amplifiers
applies, to two stage amplifiers.
The correspondence is, as before, E➡S, B ➡ G, C ➡ D.
• The behaviour of BJT and FET configurations is very similar, except for the
difference on the input side of the small signal equivalent circuit.
• A very useful possibility opens up: Use a FET for one stage and a BJT for
the other. Mixed bipolar-FET two-stage combinations try to exploit the
smaller input admittance of FETs and the better frequency response and
power handling capability of bipolars at the same time.
• This approach gives rise to the “BiCMOS” manufacturing technologies
which use FETs for input stages and BJTs for output stages, especially line
drivers.
Two stage FET amplifiers

51
FET COMMENTS
NAME 1ST
Stg 2nd
Stg
Voltage Amp. CS CS High voltage gain
Cascode CS CG High bandwidth
Op-Amp CS CD High Zin low Zout
Current Buffer CG CS Higher Zout than CB/CG
Current Buffer CG CG Second stage to improve on CB/CG
Not common CG CD Not Commo
Not common CD CS Instead of Ce offers higher Zin
Differential Amp CD CG High voltage gain and bandwidth
Darlington CD CD High Current Gain

52
Differential amplifier
• Half circuit (i.e. driven from one side) is CC followed by CB
• Very wide frequency response
• Extremely high voltage gain

53
Gate Questions
1. A cascade connection of two voltage amplifiers A1 and A2 is shown in the
figure. The open loop gain Avo
, input resistance Rin
, and output resistance
Ro
for A1 and A2 are as follows:
A1 : Avo
= 10, Rin
= 10 KΩ, Ro
= 1 KΩ
A2 : Avo
= 5, Rin
= 5 KΩ, Ro
= 200 Ω
The approximate overall voltage gain Vout
/ Vin
is …………….
Answer: 35 (2014)
2. In the silicon BJT circuit shown below, assume that the emitter area of
transistor Q1
is half that of transistor Q2
. The value of current Io
is
approximately
a. 0.5 mA
b. 2 mA
c. 9.3 mA
d. 15 mA
Answer: b (2010)

54
3. The cascode amplifier is a multistage configuration of
1.CC – CB
2.CE – CB
3.CB – CC
4.CE – CC
Answer: 2 (2005)
4.Three identical amplifiers with each one having a voltage gain of 50, input
resistance of 1 KΩ and output resistance of 250 Ω are cascaded. The open
circuit voltage gain of the combined amplifier is
a. 49 dB
b. 51 dB
c. 98 dB
d. 102 dB
Answer: c (2003)

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