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DAC−08 SERIES
8−Bit High−Speed
Multiplying D/A Converter
The DAC-08 series of 8-bit monolithic multiplying Digital-to-
Analog Converters provide very high-speed performance coupled
with low cost and outstanding applications flexibility.
Advanced circuit design achieves 70 ns settling times with very
low glitch and at low power consumption. Monotonic multiplying
performance is attained over a wide 20-to-1 reference current range.
Matching to within 1 LSB between reference and full-scale currents
eliminates the need for full-scale trimming in most applications.
Direct interface to all popular logic families with full noise immunity
is provided by the high swing, adjustable threshold logic inputs.
Dual complementary outputs are provided, increasing versatility
and enabling differential operation to effectively double the peak-to-
peak output swing. True high voltage compliance outputs allow
direct output voltage conversion and eliminate output op amps in
many applications.
All DAC-08 series models guarantee full 8-bit monotonicity and
linearities as tight as 0.1% over the entire operating temperature
range. Device performance is essentially unchanged over the
"4.5
V to
"18
V power supply range, with 37 mW power
consumption attainable at
"5.0
V supplies.
The compact size and low power consumption make the DAC-08
attractive for portable and military aerospace applications.
Features
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16
1
SOIC−16
D SUFFIX
CASE 751B
16
1
PDIP−16
N SUFFIX
CASE 648
PIN CONNECTIONS
N Package
V
LC
1
I
O
2
V− 3
I
O
4
B
1
(MSB) 5
B
2
6
B
3
7
B
4
8
16 COMPEN
15 V
REF−
14 V
REF+
13 V+
12 B
8
(LSB)
11 B
7
10 B
6
9
B
5
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
•
Fast Settling Output Current − 70 ns
Full-Scale Current Prematched to
"1.0
LSB
Direct Interface to TTL, CMOS, ECL, HTL, PMOS
Relative Accuracy to 0.1% Maximum Overtemperature Range
High Output Compliance −10 V to +18 V
True and Complemented Outputs
Wide Range Multiplying Capability
Low FS Current Drift −
"10ppm/°C
Wide Power Supply Range −
"4.5
V to
"18
V
Low Power Consumption − 37 mW at
"5.0
V
Pb−Free Packages are Available*
(Top View)
D Package*
V+ 1
V
REF+
2
V
REF−
3
COMPEN 4
V
LC
5
I
O
6
V− 7
I
O
8
16 B
8
(LSB)
15 B
7
14 B
6
13 B
5
12 B
4
11 B
3
10 B
2
9
B
1
(MSB)
Applications
8-Bit, 1.0
ms
A-to-D Converters
Servo-Motor and Pen Drivers
Waveform Generators
Audio Encoders and Attenuators
Analog Meter Drivers
Programmable Power Supplies
CRT Display Drivers
High-Speed Modems
Other Applications where Low Cost, High Speed and Complete
Input/Output Versatility are Required
•
Programmable Gain and Attenuation
•
Analog-Digital Multiplication
*For additional information on our Pb−Free strategy and soldering details, please
download the ON Semiconductor Soldering and Mounting Techniques Reference
Manual, SOLDERRM/D.
©
Semiconductor Components Industries, LLC, 2005
(Top View)
*SO and non−standard pinouts.
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 13 of this data sheet.
DEVICE MARKING INFORMATION
See general marking information in the device marking
section on page 13 of this data sheet.
1
October, 2005 − Rev. 1
Publication Order Number:
DAC−08/D
DAC−08 SERIES
V+
13
V
LC
1
5
MSB
B
1
6
B
2
7
B
3
8
B
4
9
B
5
10
B
6
11
B
7
12
LSB
B
8
4
BIAS
NETWORK
CURRENT
SWITCHES
I
OUT
I
OUT
14
V
REF
(+)
+
−
15
REFERENCE
AMPLIFIER
2
V
REF
(−)
16
COMP.
3
V−
Figure 1. Block Diagram
PIN FUNCTION DESCRIPTION
Pin # N Package / D Package
1/5
2/6
3/7
4/8
5/9
6/10
7/11
8/12
9/13
10/14
11/15
12/16
13/1
14/2
15/3
16/4
Symbol
V
LC
I
O
V−
I
O
B
1
B
2
B
3
B
4
B
5
B
6
B
7
B
8
V+
V
REF+
V
REF−
COMPEN
Logic Control Voltage
Inverted Output Current
Negative Power Supply
Non−Inverted Output Current
Output 1, Most Significant Bit (MSB)
Output 2
Output 3
Output 4
Output 5
Output 6
Output 7
Output 8, Least Significant Bit (LSB)
Positive Power Supply
Positive Reference Voltage
Negative Reference Voltage
Compensator Capacitor Pin
Description
MAXIMUM RATINGS
Rating
Power Supply Voltage
Digital Input Voltage
Logic Threshold Control
Applied Output Voltage
Reference Current
Reference Amplifier Inputs
Maximum Power Dissipation
T
amb
= 25°C (Still-Air) (Note 1)
Thermal Resistance, Junction−to−Ambient
N Package
D Package
Lead Soldering Temperature (10 sec max)
Operating Temperature Range
Operating Junction Temperature
N Package
D Package
R
qJA
Symbol
V+ to V−
V
5
−V
12
V
LC
V
0
I
14
V
14
, V
15
P
D
1450
1090
°C/W
75
105
230
0 to +70
150
°C
°C
°C
Value
36
V− to V− plus 36 V
V− to V+
V− to +18
5.0
V
EE
to V
CC
Unit
V
−
−
V
mA
−
mW
T
SOLD
T
amb
T
J
Storage Temperature Range
T
stg
−65 to +150
°C
Maximum ratings are those values beyond which device damage can occur. Maximum ratings applied to the device are individual stress limit values
(not normal operating conditions) and are not valid simultaneously. If these limits are exceeded, device functional operation is not implied, damage
may occur and reliability may be affected.
1. Derate above 25°C, at the following rates:
N package at 13.3 mW/°C
D package at 9.5 mW/°C.
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2
DAC−08 SERIES
DC ELECTRICAL CHARACTERISTICS
Pin 3 must be at least 3.0 V more negative than the potential to which R
15
is returned.
DAC−08C
Characteristic
Resolution
Monotonicity
Relative Accuracy
Differential Non-Linearity
Full-Scale Tempco
Output Voltage Compliance
Full-Scale Current
Full-Scale Symmetry
Zero-Scale Current
Full-Scale Output
Current Range
TCI
FS
V
OC
I
FS4
I
FSS
I
ZS
I
FSR
−
Full-Scale Current
Change < 1/2LSB
V
REF
= 10.000 V;
R
14
, R
15
= 5.000 kW
I
FS4
-I
FS2
−
R
14
, R
15
= 5.000 kW
V
REF
= +15 V,
V− = −10 V
V
REF
= +25 V,
V− = −12 V
Logic Input Levels
Low
High
Logic Input Current
Low
High
Logic Input Swing
Logic Threshold Range
Reference Bias Current
Reference Input Slew Rate
Power Supply Sensitivity
Positive
V
LC
= 0 V
V
IL
V
IH
I
IL
I
IH
V
IS
V
THR
I
15
dl/dt
PSSI
FS+
V
LC
= 0 V
V
IN
= −10 V to +0.8 V
V
IN
= 2.0 V to 18 V
V− = −15 V
V
S
=
"15
V
−
−
I
REF
= 1.0 mA
V+ = 4.5 to 5.5 V,
V− = −15 V; V+ = 13.5
to 16.5 V, V− = −15 V
V− = −4.5 to −5.5 V,
V+ = +15 V;
V− = −13.5 to −16.5 V,
V+ = +15 V
V
S
=
"5.0
V,
I
REF
= 1.0 mA
V
S
= +5.0 V, −15 V,
I
REF
= 2.0 mA
V
S
=
"15
V,
I
REF
= 2.0 mA
"5.0
V, I
REF
= 1.0 mA
+5.0 V, −15 V,
I
REF
= 2.0 mA
"15
V, I
REF
= 2.0 mA
−
2.0
−
−
−10
−10
−
4.0
−
−
−
−2.0
0.002
−
−
−1.0
8.0
0.0003
0.8
−
−10
10
+18
+13.5
−3.0
−
0.01
−
2.0
−
−
−10
−10
−
4.0
−
−
−
−2.0
0.002
−
−
−1.0
8.0
0.0003
0.8
−
mA
−10
10
+18
+13.5
−3.0
−
0.01
V
V
mA
mA/ms
%FS/
%VS
%FS/
%VS
2.1
4.2
−
−
−
−
2.1
4.2
−
−
−
−
mA
mA
V
−
Overtemperature
Range
Symbol
−
Test Conditions
−
Min
8.0
8.0
−
−
−
−10
1.94
−
−
Typ
8.0
8.0
−
−
"10
−
1.99
"2.0
0.2
Max
8.0
8.0
"0.39
"0.78
−
+18
2.04
"16
4.0
Min
8.0
8.0
−
−
−
−10
1.94
−
−
DAC−08E
Typ
8.0
8.0
−
−
"10
−
1.99
"1.0
0.2
Max
8.0
8.0
"0.19
"0.39
−
+18
2.04
"8.0
2.0
ppm/°C
V
mA
mA
mA
%FS
Unit
Bits
V
CC
=
"15
V , I
REF
= 2.0 mA. Output characteristics refer to both I
OUT
and I
OUT
unless otherwise noted. T
amb
= 0°C to 70°C.
Negative
PSSI
FS−
−
0.002
0.01
−
0.002
0.01
Power Supply Current
Positive
Negative
Positive
Negative
Positive
Negative
Power Dissipation
mA
I+
I−
I+
I−
I+
I−
P
D
−
−
−
−
−
−
−
−
−
3.1
−4.3
3.1
−7.1
3.2
−7.2
37
122
156
3.8
−5.8
3.8
−7.8
3.8
−7.8
48
136
174
−
−
−
−
−
−
−
−
−
3.1
−4.3
3.1
−7.1
3.2
−7.2
37
122
156
3.8
−5.8
3.8
−7.8
3.8
−7.8
48
136
174
mW
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3
DAC−08 SERIES
DC ELECTRICAL CHARACTERISTICS
(continued)
Pin 3 must be at least 3.0 V more negative than the potential to which R
15
is
returned. V
CC
= +15 V , I
REF
= 2.0 mA. Output characteristics refer to both I
OUT
and I
OUT
unless otherwise noted. T
amb
= 0°C to 70°C.
DAC−08H
Characteristic
Resolution
Monotonicity
Relative Accuracy
Differential Non-Linearity
Full-Scale Tempco
Output Voltage Compliance
Full-Scale Current
Full-Scale Symmetry
Zero-Scale Current
Full-Scale Output Current Range
Symbol
−
−
TCI
FS
V
OC
I
FS4
I
FSS
I
ZS
I
FSR
Test Conditions
−
Overtemperature Range
−
Full-Scale Current Change 1/2LSB
V
REF
= 10.000 V, R
14
,
R
15
= 5.000 kW
I
FS4
−I
FS2
−
R
14
, R
15
= 5.000 kW
V
REF
= +15 V, V− = −10 V
V
REF
= +25 V, V−=−12 V
V
LC
= 0 V
V
IL
V
IH
I
IL
I
IH
V
IS
V
THR
I
15
dl/dt
V
LC
= 0 V
V
IN
= −10 V to +0.8 V
V
IN
= 2.0 V to 18 V
V− = −15 V
V
S
=
"15
V
−
−
I
REF
= 1.0 mA
PSSI
FS+
PSSI
FS−
V+ = 4.5 to 5.5 V, V− = −15 V;
V+ = 13.5 to 16.5 V, V− = −15 V
V− = −4.5 to −5.5 V, V+ = +15 V;
V− = −13.5 to −16.5 V, V+ = +15 V
−
−
0.0003
0.002
0.01
0.01
%FS/%VS
%FS/%VS
mA
I+
I−
I+
I−
I+
I−
P
D
V
S
=
"5.0
V, I
REF
= 1.0 mA
V
S
= +5.0 V, −15 V, I
REF
= 2.0 mA
V
S
=
"15
V, I
REF
= 2.0 mA
"5.0
V, I
REF
= 1.0 mA
+5.0 V, −15 V, I
REF
= 2.0 mA
"15
V, I
REF
= 2.0 mA
−
−
−
−
−
−
−
−
−
3.1
−4.3
3.1
−7.1
3.2
−7.2
37
122
156
3.8
−5.8
3.8
−7.8
3.8
−7.8
48
136
174
mW
−
2.0
−
−
−10
−10
−
4.0
−
−
−2.0
0.002
−
−
−1.0
8.0
0.8
−
mA
−10
10
+18
+13.5
−3.0
−
V
V
mA
mA/ms
Min
8.0
8.0
−
−
−
−10
1.984
−
−
2.1
4.2
Typ
8.0
8.0
−
−
"10
−
1.992
"1.0
0.2
−
−
Max
8.0
8.0
"0.1
"0.19
"50
+18
2.000
"4.0
1.0
−
−
Unit
Bits
%FS
%FS
ppm/°C
V
mA
mA
mA
mA
mA
V
Logic Input Levels
Low
High
Logic Input Current
Low
High
Logic Input Swing
Logic Threshold Range
Reference Bias Current
Reference Input Slew Rate
Power Supply Sensitivity
Positive
Negative
Power Supply Current
Positive
Negative
Positive
Negative
Positive
Negative
Power Dissipation
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4