MC74LVX4066
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7
Figure 3. Maximum Off Channel Leakage Current,
Any One Channel, Test SetUp
OFF
7
14
V
CC
A
V
CC
GND
V
CC
SELECTED
CONTROL
INPUT
V
IL
Figure 4. Maximum On Channel Leakage Current,
Test SetUp
ON
14
V
CC
N/C
A
GND
V
CC
7
SELECTED
CONTROL
INPUT
V
IH
Figure 5. Maximum OnChannel Bandwidth
Test SetUp
ON
14
V
CC
0.1mF
C
L
*
f
in
dB
METER
*Includes all probe and jig capacitance.
V
OS
7
SELECTED
CONTROL
INPUT
V
CC
Figure 6. OffChannel Feedthrough Isolation,
Test SetUp
OFF
7
14
V
CC
0.1mF
C
L
*
f
in
dB
METER
*Includes all probe and jig capacitance.
V
OS
R
L
V
IS
SELECTED
CONTROL
INPUT
Figure 7. Feedthrough Noise, ON/OFF Control to
Analog Out, Test SetUp
14
V
CC
C
L
*
*Includes all probe and jig capacitance.
OFF/ON
V
CC
GND
V
in
1 MHz
t
r
= t
f
= 3 ns
CONTROL
V
CC/2
R
L
I
S
R
L
V
OS
7
SELECTED
CONTROL
INPUT
V
CC/2
V
CC
GND
ANALOG IN
ANALOG OUT
50%
t
PLH
t
PHL
50%
Figure 8. Propagation Delays, Analog In to
Analog Out
MC74LVX4066
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8
POSITIONWHEN TESTING t
PLZ
AND t
PZL
Figure 9. Propagation Delay Test SetUp
ON
14
V
CC
*Includes all probe and jig capacitance.
TEST
POINT
ANALOG OUTANALOG IN
C
L
*
7
SELECTED
CONTROL
INPUT
V
CC
t
r
t
f
V
CC
GND
HIGH
IMPEDANCE
V
OL
V
OH
HIGH
IMPEDANCE
CONTROL
ANALOG
OUT
90%
50%
10%
50%
50%
10%
90%
t
PZH
t
PHZ
t
PZL
t
PLZ
Figure 10. Propagation Delay, ON/OFF Control
to Analog Out
ON/OFF
V
CC
TEST
POINT
14
V
CC
1 kW
POSITIONWHEN TESTING t
PHZ
AND t
PZH
C
L
*
1
2
1
2
Figure 11. Propagation Delay Test SetUp
1
2
7
SELECTED
CONTROL
INPUT
Figure 12. Crosstalk Between Any Two Switches,
Test SetUp
R
L
ON
14
V
CC
OR GND
C
L
*
*Includes all probe and jig capacitance.
OFF
R
L
R
L
V
IS
R
L
C
L
*
V
OS
f
in
0.1 mF
V
CC/2
V
CC/2
7
SELECTED
CONTROL
INPUT
V
CC/2
Figure 13. Power Dissipation Capacitance
Test SetUp
14
V
CC
N/C
OFF/ON
A
N/C
7
SELECTED
CONTROL
INPUT
ON/OFF CONTROL
ON
V
CC
0.1 mF
C
L
*
f
in
R
L
TO
DISTORTION
METER
*Includes all probe and jig capacitance.
V
OS
V
IS
7
SELECTED
CONTROL
INPUT
V
CC
Figure 14. Total Harmonic Distortion, Test SetUp
*Includes all probe and jig capacitance.
V
CC
V
CC/2
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9
0
-10
-20
-30
-40
-50
1.0 2.0
FREQUENCY (kHz)
dBm
-60
-70
-80
-90
FUNDAMENTAL FREQUENCY
DEVICE
SOURCE
Figure 15. Plot, Harmonic Distortion
3.0
APPLICATION INFORMATION
The ON/OFF Control pins should be at V
CC
or GND logic
levels, V
CC
being recognized as logic high and GND being
recognized as a logic low. Unused analog inputs/outputs
may be left floating (not connected). However, it is
advisable to tie unused analog inputs and outputs to V
CC
or
GND through a low value resistor. This minimizes crosstalk
and feedthrough noise that may be pickedup by the unused
I/O pins.
The maximum analog voltage swings are determined by
the supply voltages V
CC
and GND. The positive peak analog
voltage should not exceed V
CC
. Similarly, the negative peak
analog voltage should not go below GND. In the example
below, the difference between V
CC
and GND is six volts.
Therefore, using the configuration in Figure 16, a maximum
analog signal of six volts peaktopeak can be controlled.
When voltage transients above V
CC
and/or below GND
are anticipated on the analog channels, external diodes (Dx)
are recommended as shown in Figure 17. These diodes
should be small signal, fast turnon types able to absorb the
maximum anticipated current surges during clipping. An
alternate method would be to replace the Dx diodes with
Mosorbs (Mosorb is an acronym for high current surge
protectors). Mosorbs are fast turnon devices ideally suited
for precise DC protection with no inherent wear out
mechanism.
ANALOG O/I
ON
14
V
CC
= 6.0 V
ANALOG I/O
+ 6.0 V
0 V
+ 6.0 V
0 V
OTHER CONTROL
INPUTS
(V
CC
OR GND)
ON
16
V
CC
D
x
D
x
V
CC
D
x
Figure 16. 6.0 V Application Figure 17. Transient Suppressor Application
7
SELECTED
CONTROL
INPUT
D
x
OTHER CONTROL
INPUTS
(V
CC
OR GND)
7
SELECTED
CONTROL
INPUT
V
CC

MC74LVX4066DTR2

Mfr. #:
Manufacturer:
ON Semiconductor
Description:
Multiplexer Switch ICs 2-6V Quad Mux/Demux
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
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