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AD7376 Datasheet(PDF) 3 Page - Analog Devices

Part # AD7376
Description  256-Position and 33-Position Digital Potentiometers
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

AD7376 Datasheet(HTML) 3 Page - Analog Devices

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REV. B
–3–
AD5200/AD5201
(VDD = 5 V
10%, or 3 V
10%, VSS = 0 V, VA = +VDD, VB = 0 V,
–40 C < TA < +85 C unless otherwise noted.)
AD5201 ELECTRICAL CHARACTERISTICS
Parameter
Symbol
Conditions
Min
Typ
1
Max
Unit
DC CHARACTERISTICS RHEOSTAT MODE
Resistor Differential Nonlinearity
2
R-DNL
RWB, VA = No Connect
–0.5
± 0.05 +0.5
LSB
Resistor Integral Nonlinearity
2
R-INL
RWB, VA = No Connect
–1
± 0.1 +1
LSB
Nominal Resistor Tolerance
3
∆R
AB
TA = 25
°C
–30
+30
%
Resistance Temperature Coefficient
RAB/
∆TV
AB = V DD, Wiper = No Connect
500
ppm/
°C
Wiper Resistance
RW
VDD = 5 V
50
100
DC CHARACTERISTICS POTENTIOMETER DIVIDER MODE (Specifications apply to all VRs.)
Resolution
4
N
6
Bits
Differential Nonlinearity
5
DNL
–0.5
± 0.01 +0.5
LSB
Integral Nonlinearity
5
INL
–1
± 0.02 +1
LSB
Voltage Divider Temperature Coefficient
∆V
W/
∆T
Code = 10 H
5
ppm/
°C
Full-Scale Error
VWFSE
Code = 20 H
–1/2
–1/4
0
LSB
Zero-Scale Error
VWZSE
Code = 00 H
0
+1/4
+1/2
LSB
RESISTOR TERMINALS
Voltage Range
6
VA, B, W
VSS
VDD
V
Capacitance
7 A, B
CA, B
f = 1 MHz, Measured to GND, Code = 10 H
45
pF
Capacitance
7 WC
W
f = 1 MHz, Measured to GND, Code = 10 H
60
pF
Shutdown Supply Current
8
IDD_SD
VDD = 5.5 V
0.01
5
µA
Common-Mode Leakage
ICM
VA = VB = VDD/2
1
nA
DIGITAL INPUTS AND OUTPUTS
Input Logic High
VIH
2.4
V
Input Logic Low
VIL
0.8
V
Input Logic High
VIH
VDD = 3 V, VSS = 0 V
2.1
V
Input Logic Low
VIL
VDD = 3 V, VSS = 0 V
0.6
V
Input Current
IIL
VIN = 0 V or 5 V
±1
µA
Input Capacitance
7
CIL
5pF
POWER SUPPLIES
Logic Supply
VLOGIC
2.7
5.5
V
Power Single-Supply Range
VDD RANGE
VSS = 0 V
–0.3
5.5
V
Power Dual-Supply Range
VDD/SS RANGE
± 2.3
± 2.7
V
Positive Supply Current
IDD
VIH = +5 V or VIL = 0 V
15
40
µA
Negative Supply Current
ISS
VSS = –5 V
15
40
µA
Power Dissipation
9
PDISS
VIH = +5 V or VIL = 0 V, VDD = +5 V, VSS = –5 V
0.2
mW
Power Supply Sensitivity
PSS
∆V
DD = +5 V
± 10%
–0.01 0.001 +0.01
%/%
DYNAMIC CHARACTERISTICS
7, 10
Bandwidth –3 dB
BW_10 k
RAB = 10 k
Ω, Code = 10
H
600
kHz
BW_50 k
RAB = 50 k
Ω, Code = 10
H
100
kHz
Total Harmonic Distortion
THDW
VA = 1 V rms, VB = 0 V, f = 1 kHz, R AB = 10 k
0.003
%
VW Settling Time (10 k
Ω/50 kΩ)t
S
VA = 5 V, VB = 0 V,
± 1 LSB Error Band
2/9
µs
Resistor Noise Voltage Density
eN_WB
RWB = 5 k
Ω, RS = 0
9
nV
√Hz
NOTES
1Typicals represent average readings at 25
°C and VDD = 5 V, VSS = 0 V.
2 Resistor position nonlinearity error R-INL is the deviation from an ideal value measured between the maximum resistance and the minimum resistance wiper posi-
tions. R-DNL measures the relative step change from ideal between successive tap positions. Parts are guaranteed monotonic. I W = VDD/R for both VDD = +2.7 V,
VSS = –2.7 V.
3 V
AB = VDD, Wiper (VW) = No connect.
4 Six bits are needed for 33 positions even though it is not a 64-position device.
5 INL and DNL are measured at V
W with the RDAC configured as a potentiometer divider similar to a voltage output D/A converter. V A = VDD and VB = 0 V. DNL
specification limits of
±1 LSB maximum are Guaranteed Monotonic operating conditions.
6 Resistor Terminals A, B, W have no limitations on polarity with respect to each other.
7 Guaranteed by design and not subject to production test.
8 Measured at the A terminal. A terminal is open-circuited in shutdown mode.
9 P
DISS is calculated from (IDD
× VDD). CMOS logic level inputs result in minimum power dissipation.
10 All dynamic characteristics use V
DD = 5 V, VSS = 0 V.
Specifications subject to change without notice.


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