Motorola MC34074P,AP, MC34074D,AD, MC34071P,AP, MC34071D,AD, MC34072P,AP Datasheet

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 
HIGH BANDWIDTH
SINGLE SUPPLY
OPERATIONAL AMPLIFIERS
Order this document by MC34071/D
D SUFFIX
PLASTIC PACKAGE
CASE 751
P SUFFIX
PLASTIC PACKAGE
CASE 626
D SUFFIX
PLASTIC PACKAGE
CASE 751A
(SO–14)
P SUFFIX
PLASTIC PACKAGE
CASE 646
PIN CONNECTIONS
(Single, Top View)
(Dual, Top View)
Offset Null
V
EE
NC V
CC
Output Offset Null
Inputs
V
EE
Inputs 1
Inputs 2
Output 2
Output 1 V
CC
Inputs 1
Output 1
V
CC
Inputs 2
Output 2
Output 4
Inputs 4
V
EE
Inputs 3
Output 3
(Quad, Top View)
4
2
3
1
Inputs 3
1 2 3 4
8 7 6 5
+
+
1 2 3 4
8 7 6 5
PIN CONNECTIONS
1
2 3 4
5 6
78
9
10
11
12
13
14
+
– +
– +
+ –
+ –
1
8
1
8
14
1
14
1
1
MOTOROLA ANALOG IC DEVICE DATA
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Quality bipolar fabrication with innovative design concepts are employed for the MC33071/72/74, MC34071/72/74 series of monolithic operational amplifiers. This series of operational amplifiers offer 4.5 MHz of gain bandwidth product, 13 V/µs slew rate and fast setting time without the use of JFET device technology. Although this series can be operated from split supplies, it is particularly suited for single supply operation, since the common mode input voltage range includes ground potential (VEE). With A Darlington input stage, this series exhibits high input resistance, low input offset voltage and high gain. The all NPN output stage, characterized by no deadband crossover distortion and large output voltage swing, provides high capacitance drive capability, excellent phase and gain margins, low open loop high frequency output impedance and symmetrical source/sink AC frequency response.
The MC33071/72/74, MC34071/72/73 series of devices are available in standard or prime performance (A Suffix) grades and are specified over the commercial, industrial/vehicular or military temperature ranges. The complete series of single, dual and quad operational amplifiers are available in plastic DIP and SOIC surface mount packages.
Wide Bandwidth: 4.5 MHz
High Slew Rate: 13 V/µs
Fast Settling Time: 1.1 µs to 0.1%
Wide Single Supply Operation: 3.0 V to 44 V
Wide Input Common Mode Voltage Range: Includes Ground (V
EE)
Low Input Offset V oltage: 3.0 mV Maximum (A Suffix)
Large Output Voltage Swing: –14.7 V to +14 V (with ±15 V Supplies)
Large Capacitance Drive Capability: 0 pF to 10,000 pF
Low Total Harmonic Distortion: 0.02%
Excellent Phase Margin: 60°
Excellent Gain Margin: 12 dB
Output Short Circuit Protection
ESD Diodes/Clamps Provide Input Protection for Dual and Quad
ORDERING INFORMATION
Op Amp
Function
Device
Operating
Temperature Range
Package
Single MC34071P, AP
MC34071D, AD
TA = 0° to +70°C
Plastic DIP
SO–8
MC33071P, AP MC33071D, AD
TA = –40° to +85°C
Plastic DIP
SO–8
Dual MC34072P, AP
MC34072D, AD
TA = 0° to +70°C
Plastic DIP
SO–8
MC33072P, AP MC33072D, AD
TA = –40° to +85°C
Plastic DIP
SO–8
Quad MC34074P, AP
MC34074D, AD
TA = 0° to +70°C
Plastic DIP
SO–14
MC33074P, AP MC33074D, AD
TA = –40° to +85°C
Plastic DIP
SO–14
Motorola, Inc. 1996 Rev 0
MC34071,2,4,A MC33071,2,4,A
2
MOTOROLA ANALOG IC DEVICE DATA
MAXIMUM RATINGS
Rating Symbol Value Unit
Supply Voltage (from VEE to VCC) V
S
+44 V
Input Differential Voltage Range V
IDR
Note 1 V
Input Voltage Range V
IR
Note 1 V
Output Short Circuit Duration (Note 2) t
SC
Indefinite sec
Operating Junction Temperature T
J
+150 °C
Storage Temperature Range T
stg
–60 to +150 °C
NOTES: 1. Either or both input voltages should not exceed the magnitude of VCC or VEE.
2.Power dissipation must be considered to ensure maximum junction temperature (TJ) is not exceeded (see Figure 1).
Offset Null
(MC33071, MC34071 only)
Q1
Q2
Q3 Q4
Q5
Q6
Q7
Q17
Q18
D2
C2
D3
R6 R7
R8
R5
Q15 Q16
Q14
Q13
Q11
Q10
R2
C1
R1
Q9
Q8
Q12
D1
R3 R4
Inputs
V
CC
Output
Current
Limit
VEE/Gnd
Base
Current
Cancellation
+
Q19
Bias
Representative Schematic Diagram
(Each Amplifier)
MC34071,2,4,A MC33071,2,4,A
3
MOTOROLA ANALOG IC DEVICE DATA
ELECTRICAL CHARACTERISTICS (V
CC
= +15 V , VEE = –15 V, RL = connected to ground, unless otherwise noted. See Note 3 for
TA = T
low
to T
high
)
A Suffix Non–Suffix
Characteristics Symbol Min Typ Max Min Typ Max Unit
Input Offset Voltage (RS = 100 , VCM = 0 V, VO = 0 V)
VCC = +15 V , VEE = –15 V , TA = +25°C VCC = +5.0 V , VEE = 0 V, TA = +25°C VCC = +15 V , VEE = –15 V , TA = T
low
to T
high
V
IO
— —
0.5
0.5 —
3.0
3.0
5.0
— —
1.0
1.5 —
5.0
5.0
7.0
mV
Average Temperature Coefficient of Input Offset Voltage
RS = 10 , VCM = 0 V, VO = 0 V,
TA = T
low
to T
high
VIO/T 10 10 µV/°C
Input Bias Current (VCM = 0 V, VO = 0 V)
TA = +25°C TA = T
low
to T
high
I
IB
— —
100
500 700
— —
100—500
700
nA
Input Offset Current (VCM = 0 V, VO = 0V)
TA = +25°C TA = T
low
to T
high
I
IO
— —
6.0 —
50
300
— —
6.0 —
75
300
nA
Input Common Mode Voltage Range
TA = +25°C TA = T
low
to T
high
V
ICR
VEE to (VCC –1.8) VEE to (VCC –2.2)
VEE to (VCC –1.8) VEE to (VCC –2.2)
V
Large Signal Voltage Gain (VO = ±10 V, RL = 2.0 k)
TA = +25°C TA = T
low
to T
high
A
VOL
50 25
100
— —
25 20
100
— —
V/mV
Output Voltage Swing (VID = ±1.0 V)
VCC = +5.0 V , VEE = 0 V, RL = 2.0 k, TA = +25°C VCC = +15 V , VEE = –15 V, RL = 10 k, TA = +25°C VCC = +15 V , VEE = –15 V, RL = 2.0 k,
TA = T
low
to T
high
V
OH
3.7
13.6
13.4
4.0 14 —
— — —
3.7
13.6
13.4
4.0 14 —
— — —
V
VCC = +5.0 V , VEE = 0 V, RL = 2.0 k, TA = +25°C VCC = +15 V, VEE = –15 V, RL = 10 k, TA = +25°C VCC = +15 V , VEE = –15 V, RL = 2.0 k,
TA = T
low
to T
high
V
OL
— — —
0.1
–14.7
0.3 –14.3 –13.5
— — —
0.1
–14.7
0.3 –14.3 –13.5
V
Output Short Circuit Current (VID = 1.0 V , VO = 0 V,
TA = 25°C)
Source Sink
I
SC
10 20
30 30
— —
10 20
30 30
— —
mA
Common Mode Rejection
RS 10 k, VCM = V
ICR
, TA = 25°C
CMR 80 97 70 97 dB
Power Supply Rejection (RS = 100 )
VCC/VEE = +16.5 V/–16.5 V to +13.5 V/–13.5 V ,
TA = 25°C
PSR 80 97 70 97 dB
Power Supply Current (Per Amplifier, No Load)
VCC = +5.0 V , VEE = 0 V, VO = +2.5 V , TA = +25°C VCC = +15 V , VEE = –15 V , VO = 0 V, TA = +25°C VCC = +15 V , VEE = –15 V , VO = 0 V,
TA = T
low
to T
high
I
D
— — —
1.6
1.9 —
2.0
2.5
2.8
— — —
1.6
1.9 —
2.0
2.5
2.8
mA
NOTES: 3. T
low
= –40°C for MC33071, 2, 4, /A T
high
= +85°C for MC33071, 2, 4, /A
=0°C for MC34071, 2, 4, /A = +70°C for MC34071, 2, 4, /A
MC34071,2,4,A MC33071,2,4,A
4
MOTOROLA ANALOG IC DEVICE DATA
AC ELECTRICAL CHARACTERISTICS (V
CC
= +15 V, VEE = –15 V, RL = connected to ground. TA = +25°C, unless otherwise noted.)
A Suffix Non–Suffix
Characteristics Symbol Min Typ Max Min Typ Max Unit
Slew Rate (Vin = –10 V to +10 V, RL = 2.0 k, CL = 500 pF)
AV = +1.0 AV = –1.0
SR
8.0 —
10 13
— —
8.0 —
10 13
— —
V/µs
Setting Time (10 V Step, AV = –1.0)
To 0.1% (+1/2 LSB of 9–Bits) To 0.01% (+1/2 LSB of 12–Bits)
t
s
— —
1.1
2.2
— —
— —
1.1
2.2
— —
µs
Gain Bandwidth Product (f = 100 kHz) GBW 3.5 4.5 3.5 4.5 MHz Power Bandwidth
AV = +1.0, RL = 2.0 k, VO = 20 Vpp, THD = 5.0%
BW 160 160 kHz
Phase margin
RL = 2.0 k RL = 2.0 k, CL = 300 pF
f
m
— —
60 40
— —
— —
60 40
— —
Deg
Gain Margin
RL = 2.0 k RL = 2.0 k, CL = 300 pF
A
m
— —
12
4.0
— —
— —
12
4.0
— —
dB
Equivalent Input Noise Voltage
RS = 100 , f = 1.0 kHz
e
n
32 32
nV/ Hz
Equivalent Input Noise Current
f = 1.0 kHz
i
n
0.22 0.22
pA/ Hz
Differential Input Resistance
VCM = 0 V
R
in
150 150 M
Differential Input Capacitance
VCM = 0 V
C
in
2.5 2.5 pF
Total Harmonic Distortion
AV = +10, RL = 2.0 k, 2.0 Vpp VO 20 Vpp, f = 10 kHz
THD 0.02 0.02 %
Channel Separation (f = 10 kHz) 120 120 dB Open Loop Output Impedance (f = 1.0 MHz) |ZO| 30 30 W
Figure 1. Power Supply Configurations Figure 2. Offset Null Circuit
Single Supply Split Supplies
1
2
3
4
V
CC
V
EE
V
CC
V
CC
V
EE
V
EE
1
2
3
4
3.0 V to 44 V VCC+|VEE|
44 V
Offset nulling range is approximately ±80 mV with a 10 k potentiometer (MC33071, MC34071 only).
V
CC
V
EE
1
2
3
4
5
6
7
10 k
+
MC34071,2,4,A MC33071,2,4,A
5
MOTOROLA ANALOG IC DEVICE DATA
RL Connected to Ground TA = 25
°
C
RL = 10 k
RL = 2.0 k
V
O
, OUTPUT VOL TAGE SWING (V
pp
)
Figure 3. Maximum Power Dissipation versus
Temperature for Package Types
Figure 4. Input Offset Voltage versus
Temperature for Representative Units
Figure 5. Input Common Mode Voltage
Range versus Temperature
Figure 6. Normalized Input Bias Current
versus Temperature
Figure 7. Normalized Input Bias Current versus
Input Common Mode Voltage
Figure 8. Split Supply Output Voltage
Swing versus Supply Voltage
TA, AMBIENT TEMPERATURE (°C)
D
P , MAXIMUM POWER DISSIPATION (mW)
–55 –40 –20 0 20 40 60 80 100 120 140 160
8 & 14 Pin Plastic Pkg
SO–14 Pkg
SO–8 Pkg
TA, AMBIENT TEMPERATURE (°C)
IO
V , INPUT OFFSET VOLTAGE (mV)
–55 –25 0 25 50 75 100 125
VCC = +15 V
VEE = –15 V
VCM = 0
TA, AMBIENT TEMPERATURE (°C)
ICR
V , INPUT COMMON MODE VOLTAGE RANGE (V)
–55 –25 0 25 50 75 100 125
V
CC
VCC/VEE = +1.5 V/ –1.5 V to +22 V/ –22 V
V
EE
TA, AMBIENT TEMPERATURE (°C)
IB
I , INPUT BIAS CURRENT (NORMALIZED)
–55 –25 0 25 50 75 100 125
VCC = +15 V
VEE = –15 V
VCM = 0
VIC, INPUT COMMON MODE VOLTAGE (V)
–12 –8.0 –4.0 0 4.0 8.0 12
VCC = +15 V
VEE = –15 V
TA = 25
°
C
VCC, |VEE|, SUPPLY VOLTAGE (V)
0 5.0 10 15 20 25
V
IB
I , INPUT BIAS CURRENT (NORMALIZED)
2400
2000
1600
1200
800
400
0
4.0
2.0
0
–2.0
–4.0
V
CC
VCC –0.8
VCC –1.6
VCC –2.4
VEE +0.01
V
EE
1.3
1.2
1.1
1.0
0.9
0.8
0.7
1.4
1.2
1.0
0.8
0.6
50
40
30
20
10
0
MC34071,2,4,A MC33071,2,4,A
6
MOTOROLA ANALOG IC DEVICE DATA
V
CC
VCC = +15 V
RL to V
CC
TA = 25°C
Gnd
V
CC
VCC = +15 V
RL = Gnd TA = 25
°
C
Gnd
V
O
, OUTPUT VOL TAGE SWING (V
pp
)
Figure 9. Single Supply Output Saturation
versus Load Resistance to V
CC
60
Figure 10. Split Supply Output Saturation
versus Load Current
Figure 11. Single Supply Output Saturation
versus Load Resistance to Ground
Figure 12. Output Short Circuit Current
versus Temperature
Figure 13. Output Impedance
versus Frequency
Figure 14. Output Voltage Swing
versus Frequency
0 5.0 10 15 20
IL, LOAD CURRENT (
±
mA)
V
CC
V
EE
Sink
VCC/VEE = +5.0 V/ –5.0 V to +22 V/ –22 V
TA = 25
°
C
Source
RL, LOAD RESISTANCE T O GROUND (Ω)
100 1.0 k 10 k 100 k
sat
V , OUTPUT SATURATION VOLTAGE (V)
RL, LOAD RESISTANCE T O VCC (Ω)
100 1.0 k 10 k 100 k
TA, AMBIENT TEMPERATURE (°C)
SC
I , OUTPUT CURRENT (mA)
–55 –25 0 25 50 75 100 125
VCC = +15 V VEE = –15 V RL
0.1
Vin = 1.0 V
Sink
Source
f, FREQUENCY (Hz)
O
Z , OUTPUT IMPEDANCE ( )
1.0 k 10 k 100 1.0 M 10 M
AV = 1000
AV = 100 AV = 10 AV = 1.0
VCC = +15 V VEE = –15 V VCM = 0 VO = 0
IO = ±0.5 mA
TA = 25
°
C
f, FREQUENCY (Hz)
3.0 k 10 k 30 k 100 k 300 k 1.0 M 3.0 M
VCC = +15 V
VEE = –15 V
AV = +1.0 RL = 2.0 k
THD
1.0%
TA = 25
°
C
sat
V , OUTPUT SATURATION VOLTAGE (V)
sat
V , OUTPUT SATURATION VOLTAGE (V)
V
CC
VCC –1.0
VCC –2.0
VEE +2.0
VEE +1.0
V
EE
VCC –2.0
VCC –4.0
V
CC
0.2
0.1
0
0
–0.4
–0.8
2.0
1.0
50
40
30
20
10
0
50
40
30
20
10
0
28 24
20 16 12
8.0
4.0 0
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