DAC0808LCM/NOPB [TI]

8-Bit D/A Converter;
DAC0808LCM/NOPB
型号: DAC0808LCM/NOPB
厂家: TEXAS INSTRUMENTS    TEXAS INSTRUMENTS
描述:

8-Bit D/A Converter

光电二极管 转换器
文件: 总14页 (文件大小:350K)
中文:  中文翻译
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DAC0808  
DAC0808 8-Bit D/A Converter  
Literature Number: SNAS539A  
May 1999  
DAC0808  
8-Bit D/A Converter  
General Description  
Features  
±
n Relative accuracy: 0.19% error maximum  
The DAC0808 is an 8-bit monolithic digital-to-analog con-  
±
verter (DAC) featuring a full scale output current settling time  
n Full scale current match: 1 LSB typ  
±
of 150 ns while dissipating only 33 mW with 5V supplies.  
n Fast settling time: 150 ns typ  
n Noninverting digital inputs are TTL and CMOS  
compatible  
n High speed multiplying input slew rate: 8 mA/µs  
n Power supply voltage range: 4.5V to 18V  
No reference current (IREF) trimming is required for most  
±
applications since the full scale output current is typically  
1
LSB of 255 IREF/256. Relative accuracies of better than  
±
0.19% assure 8-bit monotonicity and linearity while zero  
±
±
5V  
level output current of less than 4 µA provides 8-bit zero  
accuracy for IREF2 mA. The power supply currents of the  
DAC0808 is independent of bit codes, and exhibits essen-  
tially constant device characteristics over the entire supply  
voltage range.  
@ ±  
n Low power consumption: 33 mW  
The DAC0808 will interface directly with popular TTL, DTL or  
CMOS logic levels, and is a direct replacement for the  
MC1508/MC1408. For higher speed applications, see  
DAC0800 data sheet.  
Block and Connection Diagrams  
DS005687-1  
Dual-In-Line Package  
DS005687-2  
Top View  
Order Number DAC0808  
See NS Package M16A or N16A  
© 2001 National Semiconductor Corporation  
DS005687  
www.national.com  
Block and Connection Diagrams (Continued)  
Small-Outline Package  
DS005687-13  
Ordering Information  
ACCURACY  
OPERATING  
TEMPERATURE RANGE  
N PACKAGE (N16A)  
SO PACKAGE  
(M16A)  
(Note 1)  
8-bit  
0˚CTA+75˚C  
DAC0808LCN  
MC1408P8  
DAC0808LCM  
Note 1: Devices may be ordered by using either order number.  
www.national.com  
2
Absolute Maximum Ratings (Note 2)  
If Military/Aerospace specified devices are required,  
please contact the National Semiconductor Sales Office/  
Distributors for availability and specifications.  
Storage Temperature Range  
Lead Temp. (Soldering, 10 seconds)  
Dual-In-Line Package (Plastic)  
Dual-In-Line Package (Ceramic)  
Surface Mount Package  
−65˚C to +150˚C  
260˚C  
300˚C  
Power Supply Voltage  
Vapor Phase (60 seconds)  
Infrared (15 seconds)  
215˚C  
220˚C  
VCC  
+18 VDC  
−18 VDC  
VEE  
Digital Input Voltage, V5–V12  
Applied Output Voltage, VO  
Reference Current, I14  
Reference Amplifier Inputs, V14, V15  
Power Dissipation (Note 4)  
ESD Susceptibility (Note 5)  
−10 VDC to +18 VDC  
−11 VDC to +18 VDC  
5 mA  
Operating Ratings  
Temperature Range  
DAC0808  
TMIN TA TMAX  
0 TA +75˚C  
VCC, VEE  
1000 mW  
TBD  
Electrical Characteristics  
(VCC = 5V, VEE = −15 VDC, VREF/R14 = 2 mA, and all digital inputs at high logic level unless otherwise noted.)  
Symbol  
Parameter  
Relative Accuracy (Error Relative  
to Full Scale IO)  
Conditions  
(Figure 4)  
Min  
Typ  
Max  
Units  
Er  
%
±
DAC0808LC (LM1408-8)  
0.19  
%
1
Settling Time to Within ⁄  
2
LSB  
TA=25˚C (Note 7),  
(Figure 5)  
150  
30  
ns  
(Includes tPLH  
)
tPLH, tPHL  
Propagation Delay Time  
TA = 25˚C, (Figure 5)  
100  
ns  
±
TCIO  
MSB  
VIH  
Output Full Scale Current Drift  
Digital Input Logic Levels  
High Level, Logic “1”  
Low Level, Logic “0”  
Digital Input Current  
High Level  
20  
ppm/˚C  
(Figure 3)  
2
VDC  
VDC  
VIL  
0.8  
MSB  
(Figure 3)  
VIH = 5V  
0
0.040  
−0.8  
−3  
mA  
mA  
µA  
Low Level  
VIL = 0.8V  
−0.003  
−1  
I15  
Reference Input Bias Current  
Output Current Range  
(Figure 3)  
(Figure 3)  
VEE = −5V  
0
0
2.0  
2.0  
2.1  
4.2  
mA  
mA  
VEE = −15V, TA = 25˚C  
VREF = 2.000V,  
R14 = 1000,  
(Figure 3)  
IO  
Output Current  
1.9  
1.99  
0
2.1  
4
mA  
µA  
Output Current, All Bits Low  
(Figure 3)  
Output Voltage Compliance (Note 3)  
Er 0.19%, TA = 25˚C  
V
EE=−5V, IREF=1 mA  
−0.55, +0.4  
−5.0, +0.4  
VDC  
VDC  
VEE Below −10V  
SRIREF  
Reference Current Slew Rate  
Output Current Power Supply  
Sensitivity  
(Figure 6)  
4
8
mA/µs  
µA/V  
−5V VEE −16.5V  
0.05  
2.7  
Power Supply Current (All Bits  
Low)  
(Figure 3)  
ICC  
IEE  
2.3  
22  
mA  
mA  
−4.3  
−13  
Power Supply Voltage Range  
Power Dissipation  
TA = 25˚C, (Figure 3)  
VCC  
VEE  
4.5  
5.0  
5.5  
VDC  
VDC  
−4.5  
−15  
−16.5  
3
www.national.com  
Electrical Characteristics (Continued)  
(VCC = 5V, VEE = −15 VDC, VREF/R14 = 2 mA, and all digital inputs at high logic level unless otherwise noted.)  
Symbol  
Parameter  
Conditions  
Min  
Typ  
33  
Max  
170  
305  
Units  
mW  
mW  
mW  
mW  
All Bits Low  
VCC = 5V, VEE = −5V  
VCC = 5V, VEE = −15V  
VCC = 15V, VEE = −5V  
VCC = 15V, VEE = −15V  
106  
90  
All Bits High  
160  
Note 2: Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. DC and AC electrical specifications do not apply when operating  
the device beyond its specified operating conditions.  
Note 3: Range control is not required.  
Note 4: The maximum power dissipation must be derated at elevated temperatures and is dictated by T  
, θ , and the ambient temperature, T . The maximum  
A
JMAX JA  
allowable power dissipation at any temperature is P = (T  
− T )/θ or the number given in the Absolute Maixmum Ratings, whichever is lower. For this device,  
A JA  
D
JMAX  
T
JMAX  
= 125˚C, and the typical junction-to-ambient thermal resistance of the dual-in-line J package when the board mounted is 100˚C/W. For the dual-in-line N  
package, this number increases to 175˚C/W and for the small outline M package this number is 100˚C/W.  
Note 5: Human body model, 100 pF discharged through a 1.5 kresistor.  
Note 6: All current switches are tested to guarantee at least 50% of rated current.  
Note 7: All bits switched.  
Note 8: Pin-out numbers for the DAL080X represent the dual-in-line package. The small outline package pinout differs from the dual-in-line package.  
Typical Application  
DS005687-23  
DS005687-3  
FIGURE 1. +10V Output Digital to Analog Converter (Note 8)  
Typical Performance Characteristics VCC = 5V, VEE = −15V, TA = 25˚C, unless otherwise noted  
Logic Input Current vs  
Input Voltage  
Bit Transfer Characteristics  
Logic Threshold Voltage vs  
Temperature  
DS005687-14  
DS005687-15  
DS005687-16  
www.national.com  
4
Typical Performance Characteristics VCC = 5V, VEE = −15V, TA = 25˚C, unless otherwise  
noted (Continued)  
Output Current vs Output  
Voltage (Output Voltage  
Compliance)  
Output Voltage Compliance  
vs Temperature  
Typical Power Supply  
Current vs Temperature  
DS005687-18  
DS005687-19  
DS005687-17  
Typical Power Supply  
Current vs VEE  
Typical Power Supply  
Current vs VCC  
Reference Input  
Frequency Response  
DS005687-20  
DS005687-22  
DS005687-21  
Unless otherwise specified: R14 = R15 = 1 k, C = 15 pF, pin 16 to VEE; RL = 50, pin 4 to ground.  
Curve A: Large Signal Bandwidth Method of Figure 7, VREF = 2 Vp-p offset 1V above ground.  
Curve B: Small Signal Bandwidth Method of Figure 7, RL = 250, VREF = 50 mVp-p offset 200 mV above ground.  
Curve C: Large and Small Signal Bandwidth Method of Figure 9 (no op amp, RL = 50), RS = 50, VREF = 2V, VS = 100 mVp-p  
centered at 0V.  
5
www.national.com  
www.national.com  
6
Test Circuits  
DS005687-6  
V and I apply to inputs A1–A8.  
I
1
The resistor tied to pin 15 is to temperature compensate the bias current and may not be necessary for all applications.  
and A = “1” if A is at high level  
N
N
A
N
= “0” if A is at low level  
N
FIGURE 3. Notation Definitions Test Circuit (Note 8)  
DS005687-7  
FIGURE 4. Relative Accuracy Test Circuit (Note 8)  
7
www.national.com  
Test Circuits (Continued)  
DS005687-8  
FIGURE 5. Transient Response and Settling Time (Note 8)  
DS005687-9  
FIGURE 6. Reference Current Slew Rate Measurement (Note 8)  
DS005687-10  
FIGURE 7. Positive VREF (Note 8)  
www.national.com  
8
Test Circuits (Continued)  
DS005687-11  
FIGURE 8. Negative VREF (Note 8)  
DS005687-12  
FIGURE 9. Programmable Gain Amplifier or  
Digital Attenuator Circuit (Note 8)  
For bipolar reference signals, as in the multiplying mode,  
Application Hints  
R15 can be tied to a negative voltage corresponding to the  
minimum input level. It is possible to eliminate R15 with only  
a small sacrifice in accuracy and temperature drift.  
REFERENCE AMPLIFIER DRIVE AND COMPENSATION  
The reference amplifier provides a voltage at pin 14 for  
converting the reference voltage to  
turn-around circuit or current mirror for feeding the ladder.  
The reference amplifier input currrent, I14, must always flow  
into pin 14, regardless of the set-up method or reference  
voltage polarity.  
The compensation capacitor value must be increased with  
increases in R14 to maintain proper phase margin; for R14  
values of 1, 2.5 and 5 k, minimum capacitor values are 15,  
37 and 75 pF. The capacitor may be tied to either VEE or  
ground, but using VEE increases negative supply rejection.  
a current, and a  
A negative reference voltage may be used if R14 is  
grounded and the reference voltage is applied to R15 as  
shown in Figure 8. A high input impedance is the main  
Connections for a positive voltage are shown in Figure 7.  
The reference voltage source supplies the full current I14  
.
9
www.national.com  
der. The reference current may drift with temperature, caus-  
ing a change in the absolute accuracy of output current.  
However, the DAC0808 has a very low full-scale current drift  
with temperature.  
Application Hints (Continued)  
advantage of this method. Compensation involves a capaci-  
tor to VEE on pin 16, using the values of the previous  
paragraph. The negative reference voltage must be at least  
4V above the VEE supply. Bipolar input signals may be  
handled by connecting R14 to a positive reference voltage  
equal to the peak positive input level at pin 15.  
1
±
The DAC0808 series is guaranteed accurate to within  
2  
LSB at a full-scale output current of 1.992 mA. This corre-  
sponds to a reference amplifier output current drive to the  
ladder network of 2 mA, with the loss of 1 LSB (8 µA) which  
is the ladder remainder shunted to ground. The input current  
to pin 14 has a guaranteed value of between 1.9 and 2.1 mA,  
allowing some mismatch in the NPN current source pair. The  
accuracy test circuit is shown in Figure 4. The 12-bit con-  
verter is calibrated for a full-scale output current of 1.992  
mA. This is an optional step since the DAC0808 accuracy is  
essentially the same between 1.5 and 2.5 mA. Then the  
DAC0808 circuits’ full-scale current is trimmed to the same  
value with R14 so that a zero value appears at the error  
amplifier output. The counter is activated and the error band  
may be displayed on an oscilloscope, detected by compara-  
tors, or stored in a peak detector.  
When a DC reference voltage is used, capacitive bypass to  
ground is recommended. The 5V logic supply is not recom-  
mended as a reference voltage. If a well regulated 5V supply  
which drives logic is to be used as the reference, R14 should  
be decoupled by connecting it to 5V through another resistor  
and bypassing the junction of the 2 resistors with 0.1 µF to  
ground. For reference voltages greater than 5V, a clamp  
diode is recommended between pin 14 and ground.  
If pin 14 is driven by a high impedance such as a transistor  
current source, none of the above compensation methods  
apply and the amplifier must be heavily compensated, de-  
creasing the overall bandwidth.  
Two 8-bit D-to-A converters may not be used to construct a  
OUTPUT VOLTAGE RANGE  
16-bit accuracy D-to-A converter. 16-bit accuracy implies a  
1
±
±
⁄ of one part in 65,536 or 0.00076%, which  
total error of  
2
The voltage on pin 4 is restricted to a range of −0.55 to 0.4V  
when VEE = −5V due to the current switching methods  
employed in the DAC0808.  
±
is much more accurate than the 0.019% specification pro-  
vided by the DAC0808.  
The negative output voltage compliance of the DAC0808 is  
extended to −5V where the negative supply voltage is more  
negative than −10V. Using a full-scale current of 1.992 mA  
and load resistor of 2.5 kbetween pin 4 and ground will  
yield a voltage output of 256 levels between 0 and −4.980V.  
Floating pin 1 does not affect the converter speed or power  
dissipation. However, the value of the load resistor deter-  
mines the switching time due to increased voltage swing.  
Values of RL up to 500do not significantly affect perfor-  
mance, but a 2.5 kload increases worst-case settling time  
to 1.2 µs (when all bits are switched ON). Refer to the  
subsequent text section on Settling Time for more details on  
output loading.  
MULTIPLYING ACCURACY  
The DAC0808 may be used in the multiplying mode with  
8-bit accuracy when the reference current is varied over a  
range of 256:1. If the reference current in the multiplying  
mode ranges from 16 µA to 4 mA, the additional error  
contributions are less than 1.6 µA. This is well within 8-bit  
accuracy when referred to full-scale.  
A monotonic converter is one which supplies an increase in  
current for each increment in the binary word. Typically, the  
DAC0808 is monotonic for all values of reference current  
above 0.5 mA. The recommended range for operation with a  
DC reference current is 0.5 to 4 mA.  
OUTPUT CURRENT RANGE  
SETTLING TIME  
The output current maximum rating of 4.2 mA may be used  
only for negative supply voltages more negative than −8V,  
due to the increased voltage drop across the resistors in the  
reference current amplifier.  
The worst-case switching condition occurs when all bits are  
switched ON, which corresponds to a low-to-high transition  
for all bits. This time is typically 150 ns for settling to within  
1
1
2
±
2 LSB, for 8-bit accuracy, and 100 ns to ⁄ LSB for 7 and  
6-bit accuracy. The turn OFF is typically under 100 ns. These  
ACCURACY  
times apply when RL 500and CO 25 pF.  
Absolute accuracy is the measure of each output current  
level with respect to its intended value, and is dependent  
upon relative accuracy and full-scale current drift. Relative  
accuracy is the measure of each output current level as a  
fraction of the full-scale current. The relative accuracy of the  
DAC0808 is essentially constant with temperature due to the  
excellent temperature tracking of the monolithic resistor lad-  
Extra care must be taken in board layout since this is usually  
the dominant factor in satisfactory test results when measur-  
ing settling time. Short leads, 100 µF supply bypassing for  
low frequencies, and minimum scope lead length are all  
mandatory.  
www.national.com  
10  
Physical Dimensions inches (millimeters) unless otherwise noted  
Small Outline Package  
Order Number DAC0808LCM  
NS Package Number M16A  
Dual-In-Line Package  
Order Number DAC0808  
NS Package Number N16A  
11  
www.national.com  
Notes  
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