Video Multiplexer, 1 Func, 4 Channel, PDSO14, SO-14
MPC100AU/2K5 Parametric
Parameter Name
Attribute value
Maker
Burr-Brown
package instruction
SO-14
Reach Compliance Code
unknown
Analog Integrated Circuits - Other Types
VIDEO MULTIPLEXER
JESD-30 code
R-PDSO-G14
length
8.65 mm
Maximum negative supply voltage (Vsup)
-5.5 V
Negative supply voltage minimum (Vsup)
-4.5 V
Nominal Negative Supply Voltage (Vsup)
-5 V
Number of channels
4
Number of functions
1
Number of terminals
14
Nominal off-state isolation
76 dB
Maximum operating temperature
85 °C
Minimum operating temperature
-40 °C
Package body material
PLASTIC/EPOXY
encapsulated code
SOP
Package shape
RECTANGULAR
Package form
SMALL OUTLINE
Certification status
Not Qualified
Maximum seat height
1.75 mm
Maximum supply voltage (Vsup)
5.5 V
Minimum supply voltage (Vsup)
4.5 V
Nominal supply voltage (Vsup)
5 V
surface mount
YES
Temperature level
INDUSTRIAL
Terminal form
GULL WING
Terminal pitch
1.27 mm
Terminal location
DUAL
width
3.9 mm
MPC100AU/2K5 Preview
®
MPC
1
00
MP
C10
0
MPC100
Wide Bandwidth
4 x 1 VIDEO MULTIPLEXER
FEATURES
q
BANDWIDTH: 250MHz (1.4Vp-p)
q
LOW INTERCHANNEL CROSSTALK:
≤
60dB (30MHz, DIP);
≤
70dB (30MHz, SO)
q
LOW SWITCHING TRANSIENTS:
+2.5/–1.2mV
q
LOW DIFFERENTIAL GAIN/PHASE
ERRORS: 0.05%, 0.01
°
q
LOW QUIESCENT CURRENT:
One Channel Selected:
±
4.6mA
No Channel Selected:
±
230
µ
A
The MPC100 consists of four identical monolithic inte-
grated open-loop buffer amplifiers, which are con-
nected internally at the output. The unidirectional trans-
mission path consists of bipolar complementary buffers,
which offer extremely high output-to-input isolation.
The MPC100 multiplexer enables one of the four input
channels to connect to the output. The output of the
multiplexer is in a high-impedance state when no chan-
nel is selected. When one channel is selected with a
digital “1” at the corresponding SEL-input, the compo-
nent acts as a buffer with high input impedance and low
output impedance.
The wide bandwidth of over 250MHz at 1.4Vp-p
signal level, high linearity and low distortion, and low
input voltage noise of 4nV/√Hz make this crosspoint
switch suitable for RF and video applications. All
performance is specified with
±5V
supply voltage,
which reduces power consumption in comparison with
±15V
designs. The multiplexer is available in space-
saving SO-14 and DIP packages. Both are designed
and specified for operation over the industrial tem-
perature range (–40°C to +85°C.)
APPLICATIONS
q
VIDEO ROUTING AND MULTIPLEXING
(CROSSPOINTS)
q
RADAR SYSTEMS
q
DATA ACQUISITION
q
INFORMATION TERMINALS
q
SATELLITE OR RADIO LINK IF ROUTING
IN
1
DB1
DESCRIPTION
The MPC100 is a very wide bandwidth 4-to-1 channel
video signal multiplexer which can be used in a wide
variety of applications.
MPC100 is designed for wide-bandwidth systems,
including high-definition television and broadcast
equipment. Although it is primarily used to route
video signals, the harmonic and dynamic attributes of
the MPC100 make it appropriate for other analog
signal routing applications such as radar, communica-
tions, computer graphics, and data acquisition sys-
tems.
IN
2
IN
3
IN
4
DB2
V
OUT
DB3
DB4
SEL
1
SEL
2
SEL
3
SEL
4
TRUTH TABLE
SEL
1
0
1
0
0
0
SEL
2
0
0
1
0
0
SEL
3
0
0
0
1
0
SEL
4
0
0
0
0
1
V
OUT
HI-Z
IN
1
IN
2
IN
3
IN
4
International Airport Industrial Park • Mailing Address: PO Box 11400, Tucson, AZ 85734 • Street Address: 6730 S. Tucson Blvd., Tucson, AZ 85706 • Tel: (520) 746-1111 • Twx: 910-952-1111
The information provided herein is believed to be reliable; however, BURR-BROWN assumes no responsibility for inaccuracies or omissions. BURR-BROWN assumes
no responsibility for the use of this information, and all use of such information shall be entirely at the user’s own risk. Prices and specifications are subject to change
without notice. No patent rights or licenses to any of the circuits described herein are implied or granted to any third party. BURR-BROWN does not authorize or warrant
any BURR-BROWN product for use in life support devices and/or systems.
®
MPC100
2
SPECIFICATIONS
At V
CC
=
±5V,
R
L
= 10kΩ, R
SOURCE
= 50Ω, and T
A
= +25°C, unless otherwise noted.
MPC100AP, AU
PARAMETER
AC CHARACTERISTICS
FREQUENCY DOMAIN
LARGE SIGNAL BANDWIDTH (–3dB)
V
O
= 5.0Vp-p, C
OUT
= 1pF
V
O
= 2.8Vp-p, C
OUT
= 1pF
V
O
= 1.4Vp-p, C
OUT
= 1pF
V
O
= 0.2Vp-p, C
OUT
= 1pF
70
140
250
450
450
f = 4.43MHz, V
IN
= 0.3Vp-p
VDC = 0 to 0.7V
VDC = 0 to 1.4V
f = 4.43MHz, V
IN
= 0.3Vp-p
VDC = 0 to 0.7V
VDC = 0 to 1.4V
V
O
= 0.2Vp-p, DC to 30MHz
V
O
= 0.2Vp-p, DC to 100MHz
f = 30MHz, V
O
= 1.4Vp-p, R
L
= 1kΩ
–53
–67
V
I
= 1.4Vp-p, Figures 4 and 8
f = 5MHz,
f = 30MHz,
f = 5MHz,
f = 30MHz,
f = 5MHz,
f = 30MHz,
f = 5MHz,
f = 30MHz
–82
–60
–70
–71
–78
–70
–75
–76
dBc
dBc
dB
dB
dB
dB
dB
dB
dB
dB
0.05
0.06
0.01
0.02
0.04
0.05
MHz
MHz
MHz
MHz
ps
%
%
Degrees
Degrees
dB
dB
CONDITIONS
MIN
TYP
MAX
UNITS
SMALL SIGNAL BANDWIDTH
GROUP DELAY TIME
DIFFERENTIAL GAIN
DIFFERENTIAL PHASE
GAIN FLATNESS PEAKING
HARMONIC DISTORTION
Second Harmonic
Third Harmonic
CROSSTALK
MPC100AP All Hostile
Off Isolation
MPC100AU All Hostile
Off Isolation
TIME DOMAIN
RISE TIME
SLEW RATE
V
O
= 1.4Vp-p, Step 10% to 90%
C
OUT
= 1pF, R
OUT
= 22Ω
V
O
= 2Vp-p
C
OUT
= 1pF
C
OUT
= 22pF
C
OUT
= 47pF
3.3
650
460
320
ns
V/µs
V/µs
V/µs
®
3
MPC100
CONNECTION DIAGRAM
Top View
DIP/SO-14
FUNCTIONAL DESCRIPTION
IN
1
-IN
4
GND
SEL
1
- SEL
4
Four analog input channels
Analog input shielding grounds, connect to system ground
Channel selection inputs
Analog output; tracks selected channel
Negative supply voltage; typical –5VDC
Positive supply voltage; typical +5VDC
IN
1
GND
IN
2
GND
IN
3
GND
IN
4
1
2
3
4
5
6
7
DB1
14 SEL
1
13 SEL
2
V
OUT
–V
CC
+V
CC
DB2
12 –V
CC
11 V
OUT
DB3
10 +V
CC
9
SEL
3
SEL
4
DB4
8
ELECTROSTATIC
DISCHARGE SENSITIVITY
Electrostatic discharge can cause damage ranging from per-
formance degradation to complete device failure. Burr-Brown
Corporation recommends that all integrated circuits be handled
and stored using appropriate ESD protection methods.
ESD damage can range from subtle performance degradation
to complete device failure. Precision integrated circuits may
be more susceptible to damage because very small parametric
changes could cause the device not to meet published speci-