ADG408BNZ Analog Devices Inc, ADG408BNZ Datasheet - Page 8

IC MULTIPLEXER 8X1 16DIP

ADG408BNZ

Manufacturer Part Number
ADG408BNZ
Description
IC MULTIPLEXER 8X1 16DIP
Manufacturer
Analog Devices Inc
Series
LC²MOSr
Type
Analog Multiplexerr
Datasheets

Specifications of ADG408BNZ

Function
Multiplexer
Circuit
1 x 8:1
On-state Resistance
100 Ohm
Voltage Supply Source
Single Supply
Voltage - Supply, Single/dual (±)
5V, 12V
Current - Supply
100µA
Operating Temperature
-40°C ~ 85°C
Mounting Type
Through Hole
Package / Case
16-DIP (0.300", 7.62mm)
No. Of Circuits
1
Supply Current
100µA
On State Resistance Max
40ohm
Supply Voltage Range
12V, ± 15V
Operating Temperature Range
-40°C To +85°C
Analog Switch Case Style
DIP
No. Of Pins
16
Multiplexer Configuration
Single 8:1
Number Of Inputs
8
Number Of Outputs
1
Number Of Channels
1
Analog Switch On Resistance
100@±15VOhm
Analog Switch Turn On Time
150ns
Analog Switch Turn Off Time
60ns
Package Type
PDIP
Power Supply Requirement
Single/Dual
Single Supply Voltage (min)
5V
Single Supply Voltage (typ)
12V
Single Supply Voltage (max)
12V
Dual Supply Voltage (typ)
±15V
Dual Supply Voltage (max)
±22V
Power Dissipation
470mW
Mounting
Through Hole
Pin Count
16
Operating Temp Range
-40C to 85C
Operating Temperature Classification
Industrial
Amplifier Type
Analog Multiplexer
Capacitance, Drain Off
40 pF (Typ.)
Capacitance, Drain On
54 pF (Typ.)
Capacitance, Source Off
11 pF (Typ.)
Current, Leakage, Drain-off
±1 nA (Max.) @ +25 °C
Current, Leakage, Drain-on
±1 nA (Max.) @ +25 °C
Resistance, Drain To Source On
40 Ohms (Typ.) @ +25 °C
Temperature, Operating, Maximum
85 °C
Temperature, Operating, Minimum
-40 °C
Time, Transistion
120 ns (Typ.)
Time, Turn-off Enable
65 ns (Typ.)
Time, Turn-on Enable
125 ns (Typ.)
Voltage, Input, Logic High
2.4 V (Min.)
Voltage, Supply
44 V (Max.)
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

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ADG408/ADG409
TYPICAL PERFORMANCE CHARACTERISTICS
–0.1
–0.2
120
100
100
Figure 5. R
80
60
40
20
0.2
0.1
90
80
70
60
50
40
30
–15
0
Figure 4. R
–15
–15
T
V
V
I
A
T
V
V
D
Figure 6. Leakage Currents as a Function of V
DD
SS
A
DD
SS
85°C
V
V
= 25°C
(ON)
DD
SS
= 25°C
= –15V
= +15V
= –15V
ON
= +15V
= –10V
–10
= +10V
–10
–10
ON
as a Function of V
125°C
25°C
as a Function of V
–5
–5
–5
V
V
V
D
D
D
[V
[V
D
[V
0
0
(V
S
S
0
] (V)
D
S
] (V)
] (V)
S
(V
) for Different Temperatures
S
): Dual-Supply Voltage
I
5
5
S
5
V
V
(OFF)
DD
SS
V
V
I
D
DD
SS
= –5V
= +5V
(OFF)
V
V
= –15V
= +15V
DD
SS
10
10
10
D
= –12V
= +12V
(V
S
)
15
15
15
Rev. C | Page 8 of 16
–0.02
–0.04
–0.06
180
160
140
120
100
130
120
110
100
0.04
0.02
Figure 8. R
90
80
70
60
80
60
40
Figure 7. R
0
0
0
0
V
V
Figure 9. Leakage Currents as a Function of V
T
V
V
DD
SS
A
DD
SS
= 25°C
= 0V
= 12V
= 0V
ON
= 12V
ON
2
as a Function of V
2
as a Function of V
125°C
3
85°C
25°C
4
V
V
4
DD
SS
I
V
V
D
6
DD
SS
= 0V
= 5V
(ON)
V
V
V
D
D
= 0V
= 10V
D
[V
[V
D
[V
6
D
S
(V
S
6
] (V)
S
] (V)
(V
] (V)
S
I
) for Different Temperature
D
S
): Single-Supply Voltage
(OFF)
9
8
8
I
S
(OFF)
V
V
12
DD
SS
V
V
10
DD
SS
D
10
T
= 0V
= 12V
A
(V
= 0V
= 15V
= 25°C
S
)
12
15
12

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