© Semiconductor Components Industries, LLC, 2016
February, 2018 − Rev. 32 1Publication Order Number:
LM393/D
LM393, LM393E, LM293,
LM2903, LM2903E, LM2903V,
NCV2903
Low Offset Voltage
Dual Comparators
The LM393 series are dual independent precision voltage
comparators capable of single or split supply operation. These devices
are designed to permit a common mode range−to−ground level with
single supply operation. Input offset voltage specifications as low as
2.0 mV make this device an excellent selection for many applications
in consumer, automotive, and industrial electronics.
Features
Wide Single−Supply Range: 2.0 Vdc to 36 Vdc
Split−Supply Range: ±1.0 Vdc to ±18 Vdc
Very Low Current Drain Independent of Supply Voltage: 0.4 mA
Low Input Bias Current: 25 nA
Low Input Offset Current: 5.0 nA
Low Input Offset Voltage: 5.0 mV (max) LM293/393
Input Common Mode Range to Ground Level
Differential Input Voltage Range Equal to Power Supply Voltage
Output Voltage Compatible with DTL, ECL, TTL, MOS, and CMOS
Logic Levels
ESD Clamps on the Inputs Increase the Ruggedness of the Device
without Affecting Performance
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
VCC + Input - Input Output
Q3 R4 Q4
Q5
R2
Q6 Q14
Q16
Q15
Q12
Q11
Q10
Q9
Q8
Q2
Q1
F1
2.0 k
2.1 k
R1
4.6 k
Figure 1. Representative Schematic Diagram
(Diagram shown is for 1 comparator)
See detailed marking information and ordering and shipping
information on pages 6 and 7 of this data sheet.
DEVICE MARKING AND ORDERING
INFORMATION
PDIP−8
N SUFFIX
CASE 626
1
8
SOIC−8
D SUFFIX
CASE 751
1
8
PIN CONNECTIONS
(Top View)
GND
Inputs A
Inputs B
Output B
Output A VCC
+
+
1
2
3
4
8
7
6
5
www.onsemi.com
Micro8E
DM SUFFIX
CASE 846A
81
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
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2
MAXIMUM RATINGS
Rating Symbol Value Unit
Power Supply Voltage VCC +36 or ±18 V
Input Differential Voltage VIDR 36 V
Input Common Mode Voltage Range VICR −0.3 to +36 V
Output Voltage VO36 V
Output Short Circuit−to−Ground
Output Sink Current (Note 1) ISC
ISink
Continuous
20 mA
Power Dissipation @ TA = 25°C
Derate above 25°CPD
1/RJA
570
5.7 mW
mW/°C
Operating Ambient Temperature Range
LM293
LM393, LM393E
LM2903, LM2903E
LM2903V, NCV2903 (Note 2)
TA−25 to +85
0 to +70
−40 to +105
−40 to +125
°C
Maximum Operating Junction Temperature
LM393, LM393E, LM2903, LM2903E, LM2903V
LM293, NCV2903
TJ(max) 150
150
°C
Storage Temperature Range Tstg −65 to +150 °C
Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality
should not be assumed, damage may occur and reliability may be af fected.
1. The maximum output current may be as high as 20 mA, independent of the magnitude of VCC, output short circuits to VCC can cause
excessive heating and eventual destruction.
2. NCV2903 is qualified for automotive use.
ESD RATINGS
Rating HBM MM Unit
ESD Protection at any Pin (Human Body Model − HBM, Machine Model − MM)
NCV2903 (Note 2)
LM393E, LM2903E
LM393DG/DR2G, LM2903DG/DR2G
All Other Devices
2000
1500
250
1500
200
150
100
150
V
V
V
V
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
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3
ELECTRICAL CHARACTERISTICS (VCC = 5.0 Vdc, Tlow TA Thigh, unless otherwise noted.)
Characteristic Symbo
l
LM293, LM393, LM393E LM2903/E/V,
NCV2903
Unit
Min Typ Max Min Typ Max
Input Offset Voltage (Note 4) VIO mV
TA = 25°C ±1.0 ±5.0 ±2.0 ±7.0
Tlow TA Thigh ±9.0 ±9.0 ±15
Input Offset Current IIO nA
TA = 25°C ±5.0 ±50 ±5.0 ±50
Tlow TA Thigh ±150 ±50 ±200
Input Bias Current (Note 5) IIB nA
TA = 25°C 20 250 20 250
Tlow TA Thigh 400 20 500
Input Common Mode Voltage Range (Note 6) VICR V
TA = 25°C 0 VCC −1.5 0 VCC −1.5
Tlow TA Thigh 0 VCC −2.0 0 VCC −2.0
Voltage Gain AVOL 50 200 25 200 V/mV
RL 15 k, VCC = 15 Vdc, TA = 25°C
Large Signal Response Time 300 300 ns
Vin = TTL Logic Swing, Vref = 1.4 Vdc
VRL = 5.0 Vdc, RL = 5.1 k, TA = 25°C
Response Time (Note 7) tTLH 1.3 1.5 s
VRL = 5.0 Vdc, RL = 5.1 k, TA = 25°C
Input Differential Voltage (Note 8) VID VCC VCC V
All Vin GND or V− Supply (if used)
Output Sink Current ISink 6.0 16 6.0 16 mA
Vin 1.0 Vdc, Vin+ = 0 Vdc, VO 1.5 Vdc TA = 25°C
Output Saturation Voltage VOL mV
Vin 1.0 Vdc, Vin+ = 0, ISink 4.0 mA, TA = 25°C 150 400 400
Tlow TA Thigh 700 200 700
Output Leakage Current IOL nA
Vin− = 0 V, Vin+ 1.0 Vdc, VO = 5.0 Vdc, TA = 25°C 0.1 0.1
Vin− = 0 V, Vin+ 1.0 Vdc, VO = 30 Vdc,
Tlow TA Thigh 1000 1000
Supply Current ICC mA
RL = Both Comparators, TA = 25°C 0.4 1.0 0.4 1.0
RL = Both Comparators, VCC = 30 V 2.5 2.5
Product parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Product
performance may not be indicated by the Electrical Characteristics if operated under different conditions.
LM293 Tlow = −25°C, Thigh = +85°C
LM393, LM393E Tlow = 0°C, Thigh = +70°C
LM2903, LM2903E Tlow = −40°C, Thigh = +105°C
LM2903V & NCV2903 Tlow = −40°C, Thigh = +125°C
NCV2903 is qualified for automotive use.
3. The maximum output current may be as high as 20 mA, independent of the magnitude of VCC, output short circuits to VCC can cause
excessive heating and eventual destruction.
4. At output switch point, VO]1.4 Vdc, RS = 0 with VCC from 5.0 Vdc to 30 Vdc, and over the full input common mode range
(0 V to VCC = −1.5 V).
5. Due to the PNP transistor inputs, bias current will flow out of the inputs. This current is essentially constant, independent of the output state,
therefore, no loading changes will exist on the input lines.
6. Input common mode of either input should not be permitted to go more than 0.3 V negative of ground or minus supply. The upper limit of
common mode range is VCC −1.5 V.
7. Response time is specified with a 100 mV step and 5.0 mV of overdrive. With larger magnitudes of overdrive faster response times are
obtainable.
8. The comparator will exhibit proper output state if one of the inputs becomes greater than VCC, the other input must remain within the common
mode range. The low input state must not be less than −0.3 V of ground or minus supply.
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
www.onsemi.com
4
LM293/393 LM2903
Figure 2. Input Bias Current versus
Power Supply Voltage Figure 3. Input Bias Current versus
Power Supply Voltage
Figure 4. Output Saturation Voltage
versus Output Sink Current Figure 5. Output Saturation Voltage
versus Output Sink Current
Figure 6. Power Supply Current versus
Power Supply Voltage Figure 7. Power Supply Current versus
Power Supply Voltage
VCC, SUPPLY VOLTAGE (Vdc) VCC, SUPPLY VOLTAGE (Vdc)
VCC, SUPPLY VOLTAGE (Vdc) VCC, SUPPLY VOLTAGE (Vdc)
ISink, OUTPUT SINK CURRENT (mA) ISink, OUTPUT SINK CURRENT (mA)
I , INPUT BIAS CURRENT (nA)
IB
V , SATURATION VOLTAGE (Vdc)
OL
I , SUPPLY CURRENT (mA)
CC
7
0 5 10 15 20 25 30 35 40
13
0 5 10 15 20 25 30 35 40
10
1.0
0.1
0.01
0.001
0.01 0.1 1.0 10 100
1.0
0.8
0.6
0.4
0.2
05.0 10 15 20 25 30 35 40
1.2
0.4
10
1.0
0.1
0.01
0.001
0.01 0.1 1.0 10 100
0 5.0 10 15 20 25 30 35 40
TA = 0°C
TA = +25°C
TA = +70°C
TA = +125°C
RL = R
TA = 0° C
TA = +25° C
TA = +25°C
TA = 0°C
TA = +25° C
TA = -40°C
TA = -40° C
TA = 0° C
TA = +25° C
TA = +85° C
1.0
0.8
0.6
I , SUPPLY CURRENT (mA)
CC V , SATURATION VOLTAGE (Vdc)
OL I , INPUT BIAS CURRENT (nA)
IB
TA = +125°C
RL = R
TA = -40°C
TA = +70°C
TA = +125°C
TA = -55° C
Out of
Saturation
TA = +85°C
Out of
Saturation
TA = -55° C
8
9
10
11
12
13
14
TA = +85°C
TA = +105°C
15
17
19
21
23
25 TA = 0°C
TA = +25°C
TA = -40°C
TA = +70°C
TA = +125°C
TA = +85°CTA = +105°C
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
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5
APPLICATIONS INFORMATION
These dual comparators feature high gain, wide
bandwidth characteristics. This gives the device oscillation
tendencies if the outputs are capacitively coupled to the
inputs via stray capacitance. This oscillation manifests
itself during output transitions (VOL to VOH). To alleviate
this situation, input resistors <10 k should be used.
The addition of positive feedback (<10 mV) is also
recommended. It is good design practice to ground all
unused pins.
Differential input voltages may be larger than supply
voltage without damaging the comparator’s inputs. Voltages
more negative than −0.3 V should not be used.
Figure 8. Zero Crossing Detector
(Single Supply) Figure 9. Zero Crossing Detector
(Split Supply)
Figure 10. Free−Running Square−Wave Oscillator Figure 11. Time Delay Generator
Figure 12. Comparator with Hysteresis
10
D1 prevents input from going negative by more than 0.6 V.
R1 + R2 = R3
R3 R5 for small error in zero crossing.
Vin
10 k
D1
R1
8.2 k
6.8 k
R2
15 k
R3
+15 V
10 m
R5
220 k
R4
220 k
LM393
Vin(min) [ 0.4 V peak for 1% phase distortion ().
*
+VCC
10 k
Vin
-VEE
Vin Vin(min)
VCC
VO
- VEE 
LM393
-
+
LM393
51 k
51 k 51 k
RL
10 k
VCC
VCC
VCC
VO
VO
t
0
1.0 m
0.001 F
-
+
LM393
VCC VCC
VO
Vin
VO
+ Vref
Vref
Vref
0
0
0
VC
tO
t
``ON'' for t tO + t
where:
t = RC ȏ n ( Vref
VCC )
R RL
VC C
LM393
-
+
RS
VCC
RL
Vref
R1
R2
RS = R1 | | R2
Vth1 = Vref + (VCC -Vref) R1
R1 + R2 + RL
Vth2 = Vref - (Vref -VO Low) R1
R1 + R2
R1
tȏ
+
-
LM393
)
*
)
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
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6
MARKING DIAGRAMS
1
8
x = 2 or 3
A = Assembly Location
WL, L = Wafer Lot
YY, Y = Year
WW, W = Work Week
G, G = Pb−Free Package
PDIP−8
CASE 626
SOIC−8
CASE 751
*
*This marking diagram also applies to NCV2903DR2G
Micro8
CASE 846A
LMx93
ALYW
G
1
82903V
ALYW
G
1
8
2903
ALYW
G
1
8
LM393NG
AWL
YYWW
1
8LM2903N
AWL
YYWWG
x93
AYW G
G
1
8
(Note: Microdot may be in either location)
2903
AYW G
G
1
8
903V
AYW G
G
1
8
393E
ALYW
G
1
82903E
ALYW
G
1
8
LM393, LM393E, LM293, LM2903, LM2903E, LM2903V, NCV2903
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7
ORDERING INFORMATION
Device Operating Temperature
Range Package Shipping
LM293DG
−25°C to +85°C
SOIC−8
(Pb−Free) 98 Units / Rail
LM293DR2G 2500 / Tape & Reel
LM293DMR2G Micro8
(Pb−Free) 4000 / Tape and Reel
LM393DG
0°C to +70°C
SOIC−8
(Pb−Free) 98 Units / Rail
LM393DR2G 2500 / Tape & Reel
LM393EDR2G SOIC−8
(Pb−Free) 2500 / Tape & Reel
LM393NG PDIP−8
(Pb−Free) 50 Units / Rail
LM393DMR2G Micro8
(Pb−Free) 4000 / Tape and Reel
LM2903DG
−40°C to +105°C
SOIC−8
(Pb−Free) 98 Units / Rail
LM2903DR2G 2500 / Tape & Reel
LM2903EDR2G SOIC−8
(Pb−Free) 2500 / Tape & Reel
LM2903DMR2G Micro8
(Pb−Free) 4000 / Tape and Reel
LM2903NG PDIP−8
(Pb−Free) 50 Units / Rail
LM2903VDG
−40°C to +125°C
SOIC−8
(Pb−Free) 98 Units / Rail
LM2903VDR2G 2500 / Tape & Reel
LM2903VNG PDIP−8
(Pb−Free) 50 Units / Rail
NCV2903DR2G* SOIC−8
(Pb−Free) 2500 / Tape & Reel
NCV2903DMR2G* Micro8
(Pb−Free) 4000 / Tape & Reel
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging
Specifications Brochure, BRD8011/D.
*NCV Prefix for Automotive and Other Applications Requiring Unique Site and Control Change Requirements; AEC−Q100 Qualified and PPAP
Capable.
PDIP8
CASE 62605
ISSUE P
DATE 22 APR 2015
SCALE 1:1
14
58
b2
NOTE 8
D
b
L
A1
A
eB
XXXXXXXXX
AWL
YYWWG
E
GENERIC
MARKING DIAGRAM*
XXXX = Specific Device Code
A = Assembly Location
WL = Wafer Lot
YY = Year
WW = Work Week
G = PbFree Package
*This information is generic. Please refer to
device data sheet for actual part marking.
PbFree indicator, “G” or microdot “ G”,
may or may not be present.
A
TOP VIEW
C
SEATING
PLANE
0.010 CA
SIDE VIEW
END VIEW
END VIEW
WITH LEADS CONSTRAINED
DIM MIN MAX
INCHES
A−−−− 0.210
A1 0.015 −−−−
b0.014 0.022
C0.008 0.014
D0.355 0.400
D1 0.005 −−−−
e0.100 BSC
E0.300 0.325
M−−−− 10
−−− 5.33
0.38 −−−
0.35 0.56
0.20 0.36
9.02 10.16
0.13 −−−
2.54 BSC
7.62 8.26
−−− 10
MIN MAX
MILLIMETERS
NOTES:
1. DIMENSIONING AND TOLERANCING PER ASME Y14.5M, 1994.
2. CONTROLLING DIMENSION: INCHES.
3. DIMENSIONS A, A1 AND L ARE MEASURED WITH THE PACK-
AGE SEATED IN JEDEC SEATING PLANE GAUGE GS3.
4. DIMENSIONS D, D1 AND E1 DO NOT INCLUDE MOLD FLASH
OR PROTRUSIONS. MOLD FLASH OR PROTRUSIONS ARE
NOT TO EXCEED 0.10 INCH.
5. DIMENSION E IS MEASURED AT A POINT 0.015 BELOW DATUM
PLANE H WITH THE LEADS CONSTRAINED PERPENDICULAR
TO DATUM C.
6. DIMENSION eB IS MEASURED AT THE LEAD TIPS WITH THE
LEADS UNCONSTRAINED.
7. DATUM PLANE H IS COINCIDENT WITH THE BOTTOM OF THE
LEADS, WHERE THE LEADS EXIT THE BODY.
8. PACKAGE CONTOUR IS OPTIONAL (ROUNDED OR SQUARE
CORNERS).
E1 0.240 0.280 6.10 7.11
b2
eB −−−− 0.430 −−− 10.92
0.060 TYP 1.52 TYP
E1
M
8X
c
D1
B
A2 0.115 0.195 2.92 4.95
L0.115 0.150 2.92 3.81
°°
H
NOTE 5
e
e/2 A2
NOTE 3
MBMNOTE 6
M
STYLE 1:
PIN 1. AC IN
2. DC + IN
3. DC IN
4. AC IN
5. GROUND
6. OUTPUT
7. AUXILIARY
8. VCC
MECHANICAL CASE OUTLINE
PACKAGE DIMENSIONS
ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.
ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding
the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically
disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the
rights of others.
98ASB42420B
DOCUMENT NUMBER:
DESCRIPTION:
Electronic versions are uncontrolled except when accessed directly from the Document Repository.
Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.
PAGE 1 OF 1
PDIP8
© Semiconductor Components Industries, LLC, 2019 www.onsemi.com
SOIC8 NB
CASE 75107
ISSUE AK
DATE 16 FEB 2011
SEATING
PLANE
1
4
58
N
J
X 45 _
K
NOTES:
1. DIMENSIONING AND TOLERANCING PER
ANSI Y14.5M, 1982.
2. CONTROLLING DIMENSION: MILLIMETER.
3. DIMENSION A AND B DO NOT INCLUDE
MOLD PROTRUSION.
4. MAXIMUM MOLD PROTRUSION 0.15 (0.006)
PER SIDE.
5. DIMENSION D DOES NOT INCLUDE DAMBAR
PROTRUSION. ALLOWABLE DAMBAR
PROTRUSION SHALL BE 0.127 (0.005) TOTAL
IN EXCESS OF THE D DIMENSION AT
MAXIMUM MATERIAL CONDITION.
6. 75101 THRU 75106 ARE OBSOLETE. NEW
STANDARD IS 75107.
A
BS
D
H
C
0.10 (0.004)
SCALE 1:1
STYLES ON PAGE 2
DIM
A
MIN MAX MIN MAX
INCHES
4.80 5.00 0.189 0.197
MILLIMETERS
B3.80 4.00 0.150 0.157
C1.35 1.75 0.053 0.069
D0.33 0.51 0.013 0.020
G1.27 BSC 0.050 BSC
H0.10 0.25 0.004 0.010
J0.19 0.25 0.007 0.010
K0.40 1.27 0.016 0.050
M0 8 0 8
N0.25 0.50 0.010 0.020
S5.80 6.20 0.228 0.244
X
Y
G
M
Y
M
0.25 (0.010)
Z
Y
M
0.25 (0.010) ZSXS
M
____
XXXXX = Specific Device Code
A = Assembly Location
L = Wafer Lot
Y = Year
W = Work Week
G= PbFree Package
GENERIC
MARKING DIAGRAM*
1
8
XXXXX
ALYWX
1
8
IC Discrete
XXXXXX
AYWW
G
1
8
1.52
0.060
7.0
0.275
0.6
0.024
1.270
0.050
4.0
0.155
ǒmm
inchesǓ
SCALE 6:1
*For additional information on our PbFree strategy and soldering
details, please download the ON Semiconductor Soldering and
Mounting Techniques Reference Manual, SOLDERRM/D.
SOLDERING FOOTPRINT*
Discrete
XXXXXX
AYWW
1
8
(PbFree)
XXXXX
ALYWX
G
1
8
IC
(PbFree)
XXXXXX = Specific Device Code
A = Assembly Location
Y = Year
WW = Work Week
G= PbFree Package
*This information is generic. Please refer to
device data sheet for actual part marking.
PbFree indicator, “G” or microdot “G”, may
or may not be present. Some products may
not follow the Generic Marking.
MECHANICAL CASE OUTLINE
PACKAGE DIMENSIONS
ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.
ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding
the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically
disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the
rights of others.
98ASB42564B
DOCUMENT NUMBER:
DESCRIPTION:
Electronic versions are uncontrolled except when accessed directly from the Document Repository.
Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.
PAGE 1 OF 2
SOIC8 NB
© Semiconductor Components Industries, LLC, 2019 www.onsemi.com
SOIC8 NB
CASE 75107
ISSUE AK
DATE 16 FEB 2011
STYLE 4:
PIN 1. ANODE
2. ANODE
3. ANODE
4. ANODE
5. ANODE
6. ANODE
7. ANODE
8. COMMON CATHODE
STYLE 1:
PIN 1. EMITTER
2. COLLECTOR
3. COLLECTOR
4. EMITTER
5. EMITTER
6. BASE
7. BASE
8. EMITTER
STYLE 2:
PIN 1. COLLECTOR, DIE, #1
2. COLLECTOR, #1
3. COLLECTOR, #2
4. COLLECTOR, #2
5. BASE, #2
6. EMITTER, #2
7. BASE, #1
8. EMITTER, #1
STYLE 3:
PIN 1. DRAIN, DIE #1
2. DRAIN, #1
3. DRAIN, #2
4. DRAIN, #2
5. GATE, #2
6. SOURCE, #2
7. GATE, #1
8. SOURCE, #1
STYLE 6:
PIN 1. SOURCE
2. DRAIN
3. DRAIN
4. SOURCE
5. SOURCE
6. GATE
7. GATE
8. SOURCE
STYLE 5:
PIN 1. DRAIN
2. DRAIN
3. DRAIN
4. DRAIN
5. GATE
6. GATE
7. SOURCE
8. SOURCE
STYLE 7:
PIN 1. INPUT
2. EXTERNAL BYPASS
3. THIRD STAGE SOURCE
4. GROUND
5. DRAIN
6. GATE 3
7. SECOND STAGE Vd
8. FIRST STAGE Vd
STYLE 8:
PIN 1. COLLECTOR, DIE #1
2. BASE, #1
3. BASE, #2
4. COLLECTOR, #2
5. COLLECTOR, #2
6. EMITTER, #2
7. EMITTER, #1
8. COLLECTOR, #1
STYLE 9:
PIN 1. EMITTER, COMMON
2. COLLECTOR, DIE #1
3. COLLECTOR, DIE #2
4. EMITTER, COMMON
5. EMITTER, COMMON
6. BASE, DIE #2
7. BASE, DIE #1
8. EMITTER, COMMON
STYLE 10:
PIN 1. GROUND
2. BIAS 1
3. OUTPUT
4. GROUND
5. GROUND
6. BIAS 2
7. INPUT
8. GROUND
STYLE 11:
PIN 1. SOURCE 1
2. GATE 1
3. SOURCE 2
4. GATE 2
5. DRAIN 2
6. DRAIN 2
7. DRAIN 1
8. DRAIN 1
STYLE 12:
PIN 1. SOURCE
2. SOURCE
3. SOURCE
4. GATE
5. DRAIN
6. DRAIN
7. DRAIN
8. DRAIN
STYLE 14:
PIN 1. NSOURCE
2. NGATE
3. PSOURCE
4. PGATE
5. PDRAIN
6. PDRAIN
7. NDRAIN
8. NDRAIN
STYLE 13:
PIN 1. N.C.
2. SOURCE
3. SOURCE
4. GATE
5. DRAIN
6. DRAIN
7. DRAIN
8. DRAIN
STYLE 15:
PIN 1. ANODE 1
2. ANODE 1
3. ANODE 1
4. ANODE 1
5. CATHODE, COMMON
6. CATHODE, COMMON
7. CATHODE, COMMON
8. CATHODE, COMMON
STYLE 16:
PIN 1. EMITTER, DIE #1
2. BASE, DIE #1
3. EMITTER, DIE #2
4. BASE, DIE #2
5. COLLECTOR, DIE #2
6. COLLECTOR, DIE #2
7. COLLECTOR, DIE #1
8. COLLECTOR, DIE #1
STYLE 17:
PIN 1. VCC
2. V2OUT
3. V1OUT
4. TXE
5. RXE
6. VEE
7. GND
8. ACC
STYLE 18:
PIN 1. ANODE
2. ANODE
3. SOURCE
4. GATE
5. DRAIN
6. DRAIN
7. CATHODE
8. CATHODE
STYLE 19:
PIN 1. SOURCE 1
2. GATE 1
3. SOURCE 2
4. GATE 2
5. DRAIN 2
6. MIRROR 2
7. DRAIN 1
8. MIRROR 1
STYLE 20:
PIN 1. SOURCE (N)
2. GATE (N)
3. SOURCE (P)
4. GATE (P)
5. DRAIN
6. DRAIN
7. DRAIN
8. DRAIN
STYLE 21:
PIN 1. CATHODE 1
2. CATHODE 2
3. CATHODE 3
4. CATHODE 4
5. CATHODE 5
6. COMMON ANODE
7. COMMON ANODE
8. CATHODE 6
STYLE 22:
PIN 1. I/O LINE 1
2. COMMON CATHODE/VCC
3. COMMON CATHODE/VCC
4. I/O LINE 3
5. COMMON ANODE/GND
6. I/O LINE 4
7. I/O LINE 5
8. COMMON ANODE/GND
STYLE 23:
PIN 1. LINE 1 IN
2. COMMON ANODE/GND
3. COMMON ANODE/GND
4. LINE 2 IN
5. LINE 2 OUT
6. COMMON ANODE/GND
7. COMMON ANODE/GND
8. LINE 1 OUT
STYLE 24:
PIN 1. BASE
2. EMITTER
3. COLLECTOR/ANODE
4. COLLECTOR/ANODE
5. CATHODE
6. CATHODE
7. COLLECTOR/ANODE
8. COLLECTOR/ANODE
STYLE 25:
PIN 1. VIN
2. N/C
3. REXT
4. GND
5. IOUT
6. IOUT
7. IOUT
8. IOUT
STYLE 26:
PIN 1. GND
2. dv/dt
3. ENABLE
4. ILIMIT
5. SOURCE
6. SOURCE
7. SOURCE
8. VCC
STYLE 27:
PIN 1. ILIMIT
2. OVLO
3. UVLO
4. INPUT+
5. SOURCE
6. SOURCE
7. SOURCE
8. DRAIN
STYLE 28:
PIN 1. SW_TO_GND
2. DASIC_OFF
3. DASIC_SW_DET
4. GND
5. V_MON
6. VBULK
7. VBULK
8. VIN
STYLE 29:
PIN 1. BASE, DIE #1
2. EMITTER, #1
3. BASE, #2
4. EMITTER, #2
5. COLLECTOR, #2
6. COLLECTOR, #2
7. COLLECTOR, #1
8. COLLECTOR, #1
STYLE 30:
PIN 1. DRAIN 1
2. DRAIN 1
3. GATE 2
4. SOURCE 2
5. SOURCE 1/DRAIN 2
6. SOURCE 1/DRAIN 2
7. SOURCE 1/DRAIN 2
8. GATE 1
ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.
ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding
the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically
disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the
rights of others.
98ASB42564B
DOCUMENT NUMBER:
DESCRIPTION:
Electronic versions are uncontrolled except when accessed directly from the Document Repository.
Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.
PAGE 2 OF 2
SOIC8 NB
© Semiconductor Components Industries, LLC, 2019 www.onsemi.com
Micro8
CASE 846A02
ISSUE K
DATE 16 JUL 2020
SCALE 2:1
STYLE 1:
PIN 1. SOURCE
2. SOURCE
3. SOURCE
4. GATE
5. DRAIN
6. DRAIN
7. DRAIN
8. DRAIN
STYLE 2:
PIN 1. SOURCE 1
2. GATE 1
3. SOURCE 2
4. GATE 2
5. DRAIN 2
6. DRAIN 2
7. DRAIN 1
8. DRAIN 1
STYLE 3:
PIN 1. N-SOURCE
2. N-GATE
3. P-SOURCE
4. P-GATE
5. P-DRAIN
6. P-DRAIN
7. N-DRAIN
8. N-DRAIN
GENERIC
MARKING DIAGRAM*
XXXX = Specific Device Code
A = Assembly Location
Y = Year
W = Work Week
G= PbFree Package
XXXX
AYWG
G
1
8
*This information is generic. Please refer to
device data sheet for actual part marking.
PbFree indicator, “G” or microdot “G”, may
or may not be present. Some products may
not follow the Generic Marking.
(Note: Microdot may be in either location)
MECHANICAL CASE OUTLINE
PACKAGE DIMENSIONS
ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries.
ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding
the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically
disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the
rights of others.
98ASB14087C
DOCUMENT NUMBER:
DESCRIPTION:
Electronic versions are uncontrolled except when accessed directly from the Document Repository.
Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red.
PAGE 1 OF 1
MICRO8
© Semiconductor Components Industries, LLC, 2019 www.onsemi.com
www.onsemi.com
1
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