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What is MC33171?

This electronic component, produced by the manufacturer "ON Semiconductor", performs the same function as "(MC33171 - MC33174) Low Power Operational Amplifiers".


MC33171 Datasheet PDF - ON Semiconductor

Part Number MC33171
Description (MC33171 - MC33174) Low Power Operational Amplifiers
Manufacturers ON Semiconductor 
Logo ON Semiconductor Logo 


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MC33171, 2, 4,
NCV33172, 4
Single Supply 3.0 V to 44 V,
Low Power Operational
Amplifiers
Quality bipolar fabrication with innovative design concepts are
employed for the MC33171/72/74, NCV33172/74 series of
monolithic operational amplifiers. These devices operate at 180 mA
per amplifier and offer 1.8 MHz of gain bandwidth product and
2.1 V/ms slew rate 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 includes ground potential (VEE). With a
Darlington input stage, these devices exhibit 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 MC33171/72/74, NCV33172/74 are specified over the
industrial/automotive temperature ranges. The complete series of
single, dual and quad operational amplifiers are available in plastic as
well as the surface mount packages.
Features
Low Supply Current: 180 mA (Per Amplifier)
Wide Supply Operating Range: 3.0 V to 44 V or ±1.5 V to ±22 V
Wide Input Common Mode Range, Including Ground (VEE)
Wide Bandwidth: 1.8 MHz
High Slew Rate: 2.1 V/ms
Low Input Offset Voltage: 2.0 mV
Large Output Voltage Swing: −14.2 V to +14.2 V
(with ±15 V Supplies)
Large Capacitance Drive Capability: 0 pF to 500 pF
Low Total Harmonic Distortion: 0.03%
Excellent Phase Margin: 60°
Excellent Gain Margin: 15 dB
Output Short Circuit Protection
ESD Diodes Provide Input Protection for Dual and Quad
NCV Prefix for Automotive and Other Applications Requiring
Unique Site and Control Change Requirements; AEC−Q100
Qualified and PPAP Capable
These Devices are Pb−Free, Halogen Free/BFR Free and are RoHS
Compliant
www.onsemi.com
8
1
8
1
PDIP−8
P SUFFIX
CASE 626
SO−8
D, VD SUFFIX
CASE 751
14
1
14
1
14
1
PDIP−14
P, VP SUFFIX
CASE 646
SO−14
D, VD SUFFIX
CASE 751A
TSSOP−14
DTB SUFFIX
CASE 948G
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 9 of this data sheet.
DEVICE MARKING INFORMATION
See general marking information in the device marking
section on page 10 of this data sheet.
© Semiconductor Components Industries, LLC, 2015
May, 2015 − Rev. 13
1
Publication Order Number:
MC33171/D

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MC33171 equivalent
MC33171, 2, 4, NCV33172, 4
3
0
20
Phase
10
Margin
= 58°
0 VCC/VEE = ±15 V
RL = 10 k
-10
Vout = 0 V
TA = 25°C
1 - Phase
-20 2 - Phase, CL = 100 pF
3 - Gain
-30 4 - Gain, CL = 100 pF
100 k
1.0 M
2
3
f, FREQUENCY (Hz)
120
Gain
1 Margin
= 15 dB
140
160
4 180
200
220
10 M
Figure 4. Open Loop Voltage Gain and
Phase versus Frequency
70
60
50
40
30
20
10
0
10
70
60
fm VCC/VEE = ±15 V
AVOL = +1.0
50
RL = 10 k
DVO = 20 mVpp 40
TA = 25°C
30
%
20
10
20 50 100 200
CL, LOAD CAPACITANCE (pF)
0
500 1.0 k
Figure 5. Phase Margin and Percent
Overshoot versus Load Capacitance
1.3
1.2
GBW
1.1
1.0
0.9
0.8
VCC/VEE = ±15 V
RL = 10 k
SR
0.7
-55
-25 0 25 50 75
TA, AMBIENT TEMPERATURE (°C)
100
125
Figure 6. Normalized Gain Bandwidth Product
and Slew Rate versus Temperature
5.0 ms/DIV
VCC/VEE = ±15 V
0 VCM = 0 V
VO = 0 V
DIO = ±0.5 mA
TA = 25°C
0
5.0 ms/DIV
Figure 7. Small and Large Signal
Transient Response
140
VCC/VEE = ±15 V
120 AV = +1.0
RL = 10 k
100 CL = 100 pF
TA = 25°C
80
60
AV = 1000
AV = 100
40
20
0
200
AV = 10
AV = 1.0
2.0 k 20 k 200 k
f, FREQUENCY (Hz)
2.0 M
Figure 8. Output Impedance and Frequency
1.1
1. TA = -55°C
2. TA = 25°C
0.9 3. TA = 125°C
Quad
0.7
Dual
0.5
0.3 Single
0.1
0
5.0 10 15 20
VCC/VEE, SUPPLY VOLTAGE (±V)
1
2
3
1
2
3
1
2
3
25
Figure 9. Supply Current versus Supply Voltage
www.onsemi.com
5


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