Chapter 1
Chapter 1
Chapter 1
      BJT as a Small Signal Amplifiers
                                                           1
                Assoc. Prof. Ts. Dr. Ruzlaini Bt Ghoni
Contents
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Introduction
    This is why you cannot turn the volume on an amplifier all the way up
    to the maximum value because even small input signals will be
    reduced to unintelligible hash.
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Amplifier Operation
1.5 V 5V
            In
                                    Amplifier                             Out
                                                               Out
                                                               5V
                                                  Gain   =              = 3.33
                                                             1.5
                                                               InV
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350 kΩ 1 kΩ
                                                                        14 V
                                                 C
                                    B
                        CC                          E
10
10
     SAT.          14                                                           100 mA
                                                    LINEAR
                   12                                                           80 mA
                   10
                                                                                60 mA
      IC in mA      8
                    6                                                           40 mA
                    4                                                           20 mA
                    2
                                                                                0 mA
                        0    2      4    6      8       10 12 14 16 18
VCE in Volts
11
                                         14 V
                             IB =                         = 40 mA
                                        350 kΩ
350 kΩ 1 kΩ
                                                                        14 V
                                                    C
                                    B
                        CC                          E
12
12
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                 14                                                 100 mA
                                                     Q              80 mA
                 12
                 10
                                                                    60 mA
     IC in mA      8
                   6                                                40 mA
                   4                                                20 mA
                  2
                                                                    0 mA
                       0     2    4   6      8   10 12 14 16 18
VCE in Volts
13
14 100 mA
                 12                                                 80 mA
                 10
                                                                    60 mA
     IC in mA      8
                   6                                                40 mA
                   4                                                20 mA
                  2
                                                                    0 mA
                       0     2    4   6      8   10 12 14 16 18
VCE in Volts
14
14
14 100 mA
                 12                                                 80 mA
                 10
                                                                    60 mA
     IC in mA      8
                   6                                                40 mA
                   4                                                20 mA
                  2
                                                                    0 mA
                       0     2    4   6      8   10 12 14 16 18
VCE in Volts
15
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14 100 mA
                   12                                                           80 mA
                   10
                                                                                60 mA
       IC in mA      8
                     6                                                          40 mA
                     4                                                          20 mA
                    2
                                                                                0 mA
                         0    2     4       6      8       10 12 14 16 18
VCE in Volts
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16
                14 V
      IB =              = 40 mA
              350 kΩ
      IC = β x IB = 150 x 40 mA = 6 mA
VRL = IC x RL = 6 mA x 1 kΩ = 6 V
                    350 kΩ                                 1 kΩ
                                                                         14 V
                                                       C
                                        B
                         CC                            E       b = 150
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                14 V
     IB =               = 40 mA (IB is not affected)
              350 kΩ
     IC = β x IB = 350 x 40 mA = 14 mA (IC is higher)
                   350 kΩ                                  1 kΩ
                                                                         14 V
                                                       C
                                    B
                         CC                            E       b = 350
                                                                          b is higher
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14 100 mA
                               12                                                  80 mA
                               10
                                                                                   60 mA
                 IC in mA       8
                                6                                                   40 mA
                                4                                                   20 mA
                                2
                                                                                    0 mA
                                    0    2   4     6    8   10 12 14 16 18
VCE in Volts
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                                    BJT circuit under investigation
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Input and output impedances are a concept and do not represent any physical resistor
     They represent a value in Ohms (Ω) that takes into consideration the design of the amplifiers (the
     arrangement of the components around the transistor) and to what and how they are connected
     (source, other amplifiers or transducers)
     The input impedance is connected across the input terminals of the amplifier while the output
     impedance is connected in series with the amplifier
Zin=Vin/Iin Zout=Vout/Iout
     Generally, an input impedance is high and an output impedance is low. Ideal amplifiers have
     an infinite input impedance and a zero value for the output impedance.
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 If there is something to really keep in mind about why input and output
 impedances are so important is matching. Impedance matching is a simple
 concept that states that the power transfer from an internal source
 resistance (RS) to a load (RL) is maximized when RS=RL. A simple
 representation is given below to define the different parameters in this
 context :
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                                                                                                                                           𝑉"
                                                                                                       b                                   𝐼"
                                 𝑉!
                                 𝐼!
The input (Vi) is applied to the base and the output (Vo) is from the collector.
      The Common-Emitter is characterized as having high input impedance and low output impedance
      with a high voltage and current gain.                                                 25
25
C om m on-Em itter ( C E ) F ix e d - B ia s C o n f ig u r a t io n
                                                     DC Equivalent Circuit
                                                                                                                                     IC
                                                                                                                               b=          = gain
                                                                                                                                     IB
                    VCC    = 12 V                                             +                                             This is why BJT is known as CURRENT GAIN !!
         +
               +                                          +                                                                          VCC         12 V
                                                                                                                              IB =         =             = 34.3 μA
                                                                                                                                     RB         350 kΩ
        V RB
                   RB           RC                                   VR C
                   350 kΩ     1 kΩ
                                                                                     +                                       IC = b x IB = 150 x 34.3 μA = 5.14 mA
                                                       +-
                                      C                                                                VR C = VR L = IC x RL = 5.14 mA x 1 kΩ = 5.14 V
               -
VCC                                    bD C = ba c = 150           VCE                             VCC                     VCE = VCC - VR L = 12 V – 5.14 V = 6.86 V
                      B
                                      E                   +
                                                          -                                                                IC ≅ IE = 5.14 mA
                                                                                     VC
VE
                                                          -                       --
         -                                                                                                                                                    26
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re = 25 mV/ IE
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                                             re model
                  Input                                                                               Output
     b and ro : look in the datasheet for the transistor or test the transistor using a curve
               tracer
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Impedance Calculations
Z i = R B || bre Z o = R C || ro
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                               Gain Calculations
     Voltage Gain (Av)                                                          Current Gain (Ai)
     Av = Vo = - (Rc || ro)                                             Ai = Io =      bRBro
          Vi         re                                                      Ii (ro + RC)(RB + bre)
     Av = - Rc   (assumed ro ≥ 10 R C )                                 Ai ≅ b
            re                                                          (assumed ro ≥ 10 R C , R B ≥ 10 bre)
                                                                        Ai = - Av Zi
                                                                                 RC
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Voltage Gain
Vi Vi = Ib bre
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                                            Current Gain
                                                   Io = robIb                                          Io = rob
        Ai = Io = Io                                    ro + Rc                                        Ib ro + Rc
             Ii Ib                                Ib = RBIi                                            Ib = RB
                                                      RB + bre                                         Ii RB + bre
Ai = Io Ib = rob      RB                                             ∴ Ai = Io =     robRB
     Ib Ii  ro + Rc RB + bre                                                Ii (ro + Rc)(RB + bre)
                                                                                                    if ro ≥ 10 Rc and RB ≥ 10bre
∴ Ai = Io ≅ robRB = b
       Ii  (ro)(RB)
       ∴ Ai = -Av Zi
                      RC                                                                                                        33
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  R1 and R2 form
 a voltage divider
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                                        DC Equivalent Circuit
                                                                                                                  R2
                                                                                              VB =                         x VCC
      VCC     12 V                                           +VCC                                            R1 + R2
                                                                                     VB =                        2.7 kΩ
                                                                                                                                   x 12 V
     R1                                                                                            2.7 kΩ + 22 kΩ
     22 kΩ
                   RC   2.2 kΩ                       R1
                                                                                                          VB = 1.31 V
                        C
                                                              +VB
                                                                                                         VE = VB - VBE
      VB
       B                                             R2                               VE = 1.31 V - 0.7 V = 0.61 V
             VBE
                        E
                            VE                                                                                        VE
     R2                                                                                                  IE =
     2.7 kΩ                 RE                                                                                        RE
                        220 Ω
                                                                                                        0.61 V
                                                                                          IE =                              = 2.77 mA
                                                                                                        220 W
IC ≅ IE 35
35
                                            AC Equivalent Circuit
             Input                                                                                                         Output
Z i = R 1 || R 2 || bre Z o = R C || ro
                                                                                Z o ≅ R C (assumed ro ≥ 10 R C )
                                                                                                                                      36
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                                  Gain Calculations
     Voltage Gain (Av)                                                             Current Gain (Ai)
     Av = Vo = - (Rc || ro)                                           Ai = Io =     b(R1 || R2 )ro
          Vi         re                                                    Ii   (ro + RC)((R1 || R2 ) + bre)
     Av = - Rc   (assumed ro ≥ 10 R C )                               Ai = Io =     b(R1 || R2 )
            re                                                             Ii   ((R1 || R2 ) + bre)
                                                                      (assumed ro ≥ 10 R C)
                                                                      Ai = Io ≅ b
                                                                           Ii
                                                                      (assumed ro ≥ 10 R C, ( R 1 || R 2 ) ≥ 10 bre)
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Voltage Gain
Vi Vi = Ib bre
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                                                Current Gain
                               Io = robIb                                                         Io = rob
 Ai = Io = Io                       ro + Rc                                                       Ib ro + Rc
      Ii Ib                     Ib =           (R1 || R2) Ii
                                                                                                  Ib =    (R1 || R2)
                                            (R1 || R2) + bre
                                                                                                  Ii   (R1 || R2) + bre
             ∴ Ai = -Av Zi
                               RC                                                                                                     39
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Unbypassed RE
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                                 AC Equivalent Circuit
                                     Unbypassed RE
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     V i = Ibbre + ( b + 1 ) IbR E                              Z b ≅ b re + bR E
     Z b ≅ b (re + R E )       Z i = R B || Z b
     ∴ Z b ≅ V i = bre (b+ 1) IbR E                             R E >> re
     Z b ≅ brIeb (Assumed RE >> re )                                                                   42
∴ Z b ≅ bR E
42
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Gain Calculations
Av = Vo = - bRc                                                                     Ai = Io = bRB
     Vi      Zb                                                                          Ii RB + Zb
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                                                         Voltage Gain
                                   Vo = -IoRc = -bIbRc = -b Vi Rc                                       Ib = Vi
  Av = Vo                                                   Zb                                               Zb
       Vi                           Vi = IbZb
  Av = -bRc
        Zb
 Substituting z b = b (re + RE )
  Av = - Rc
       re + RE
 Assumed z b ≅ bRE )                         Negative sign of inverse output voltage
                                             waveform (The phase relationship between
                                             input and output is 180 degrees inverse)
  Av = -Rc
        RE                                                                                                        44
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Current Gain
                                                    Io = bIb                                   Io = b
        Ai = Io = Io                                                                           Ib
             Ii Ib                                  Ib = RB Ii                                 Ib = RB
                                                        RB + Zb                                Ii  RB + Zb
                                            ∴ Ai = Io = Io Ib =b RB
                                                   Ii Ib Ii     RB + Zb
                                                            ∴ Ai = -Av Zi
                                                                                          RC
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Bypassed RE
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DC Equivalent Circuit
                                                                                                 IB = VCC
                                                                                                       RB
                                                                                                 IE ≅ IC = βIB
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AC Equivalent Circuit
         Z i = R B || Z b                                         Z b ≅ b (re + R E)
                                                                                                            48
         Z b = bre + (b + 1)R E                                   Z o ≅ bR E
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                                    Calculation for 𝐼$
                                                                       '*
                         𝐼$ = 𝛽 + 1 𝐼& = 𝛽 + 1
                                                                       (-
                                                    𝑉)
                                          𝐼& =
                                                    𝑍&
                                 𝑍% = 𝛽𝑟, + 𝛽 + 1 𝑅-
                    Substituting 𝑍% gives
                                                         𝑉)                                𝛽+1 ≅β
                    𝐼$ = 𝛽 + 1 𝑉) =                         + 𝑅0
                                                     𝛽𝑟$                                 b&'   b&
                                                        +𝛽1                            ( b)*)
                                                                                              ≅ ' = 𝑟,
                                                                                                b
                                                        $*
                                        ∴ 𝐼# =
                                                     %+ & ',
                                                                                                     49
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                                      Emitter-Follower Configuration
                                 Impedance Calculations (cont’d)
           Output Impedance:
                     7"+#)#)I2/4"2E-/R-/2#3R"6")*"2+E%2/4"2"3#//"%2+E00E1"%2 *E)+#I-%./#E)
                              &#
                    ! D" =
                           %" + $ !
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Gain Calculations
        𝑉"     𝑅-                                                            𝛽𝑅3
 𝐴. =      =                                               𝐴) ≅ −
        𝑉!   𝑅- + 𝑟,                                                       𝑅3 + 𝑍&
                                                          Current Gain from Voltage Gain
        𝑉"
 𝐴. =      ≅1
        𝑉!                                                                        %
                                                          𝐴# = -𝐴$ & (
                Assummed 𝑅-    ≫ 𝑟,, 𝑅- + 𝑟, ≅ 𝑅-
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                                       Voltage Gain
             𝑅+ 𝑉,
     𝑉* =
            𝑅+ + 𝑟#
              $3         ',
     ∴ 𝐴- =        =
              $*       ', & %+
                   𝑅- ≫ 𝑟,
               𝑅- + 𝑟, ≅ 𝑅-
              $3
     ∴ 𝐴- =        ≅1
              $*
                                      The phase relationship between input and
                                      output is in-phase
                                                                                   52
52
                                       Current Gain
                                                      5/60
                                          𝐼4 = 5
                                                      / 7 81
                                              6        5/
                                          ∴ 61= 5
                                                  0   / 7 81
                                 𝐼9 = −𝐼: = − 𝛽 + 1 𝐼4
                                          6
                                        ∴ 62 = − 𝛽 + 1
                                           1
                                 53       53 5-                        6;
                         𝐴) =         =               =− 𝛽+1
                                 5*       5- 5*                      6;7 (-
                                                                    𝛽+1 ≅β
                                           5';                                (
                        ∴ 𝐴, ≅ −                               or
                                                                    𝐴) = -𝐴8 6 *
                                          '; & 6-                              ,
                                                                                   53
53
 The input (Vi) is applied to the emitter and the output (Vo) is from the
 collector
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AC Equivalent Circuit
Z i = R E || re Z o = RC
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Gain Calculations
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Voltage Gain
                          '*
           𝑉* =α          ;+
                               𝑅<
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Current Gain
𝐼# = 𝐼,
𝐼# = −𝛼𝐼# = -𝛼𝐼,
                                  93
                        ∴ 𝐴, =         = −𝛼 = −1
                                  9*
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Troubleshooting
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