DG528 Maxim, DG528 Datasheet

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DG528

Manufacturer Part Number
DG528
Description
Maxim's DG528/DG529 are monolithic, 8-channel, CMOS multiplexers with on-board address and control latches that simplify design and reduce board space in microprocessor-based applications
Manufacturer
Maxim
Datasheet

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Maxim’s DG528/DG529 are monolithic, 8-channel,
CMOS multiplexers with on-board address and control
latches that simplify design and reduce board space in
microprocessor-based applications. The DG528 is a
single-ended, 1-of-8 multiplexer, while the DG529 is a
differential, 2-of-8 multiplexer. These devices can oper-
ate as multiplexers or demultiplexers.
The DG528/DG529 have break-before-make switching
to prevent momentary shorting of the input signals.
Each device operates with dual supplies (±4.5V to
±20V) or a single supply (+5V to +30V). All logic inputs
are TTL and CMOS compatible. The Maxim
DG528/DG529 are pin and electrically compatible with
the industry-standard DG528/DG529.
________________________Applications
19-3519; Rev 0; 3/91
Call toll free 1-800-998-8800 for free samples or literature.
__________Typical Operating Circuit
_______________General Description
DIFFERENTIAL INPUT FOR DATA-ACQUISITION SYSTEMS
Data-Acquisition Systems
Automatic Test Equipment
Avionics and Military Systems
Communication Systems
Microprocessor-Controlled Systems
Audio-Signal Multiplexing
IN1A
IN1B
IN2A
IN2B
IN3A
IN3B
IN4A
IN4B
+5V
WR RS
DG529
-5V
A0 A1
________________________________________________________________ Maxim Integrated Products
MUX AND A/D CONTROL
OUTA
OUTB
MAX133
8-Channel Latchable Multiplexers
P INTERFACE
____________________________Features
Ordering Information continued at end of data sheet.
* Contact factory for dice specifications.
** Contact factory for availability and processing to MIL-STD-883.
_________________Pin Configurations
______________Ordering Information
DG528CJ
DG528CWN
DG528CK
DG528C/D
DG528DJ
DG528DN
DG528EWN
DG528DK
DG528AZ
DG528AK
Low-Power, Monolithic CMOS Design
On-Board Address Latches
Break-Before-Make Input Switches
TTL and CMOS Logic Compatible
Microprocessor-Bus Compatible
r
Pin and Electrically Compatible with the Industry-
Standard DG528/DG529 and ADG528/ADG529
DS(ON)
TOP VIEW
PART
Pin Configurations continued at end of data sheet.
< 400Ω
WR
EN
A0
S1
S2
S3
S4
V-
-40°C to +85°C
-40°C to +85°C
-40°C to +85°C
-40°C to +85°C
-55°C to +125°C
-55°C to +125°C
D
TEMP. RANGE
0°C to +70°C
0°C to +70°C
0°C to +70°C
0°C to +70°C
1
2
3
4
5
6
7
8
9
DIP/SO
DG528
18
17
16
15
14
12
11
10
18 Plastic DIP
18 Wide SO
18 CERDIP
Dice*
18 Plastic DIP
20 PLCC
18 Wide SO
18 CERDIP
20 LCC**
18 CERDIP**
13
PIN-PACKAGE
RS
A1
A2
GND
V+
S5
S6
S7
S8
1

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DG528 Summary of contents

Page 1

... Each device operates with dual supplies (±4.5V to ±20V single supply (+5V to +30V). All logic inputs are TTL and CMOS compatible. The Maxim DG528/DG529 are pin and electrically compatible with the industry-standard DG528/DG529. ________________________Applications Data-Acquisition Systems ...

Page 2

... T -50 A MAX T = +25°C -10 A DG528 = 0V -200 -0.015 A MAX T = +25°C -10 A DG529 -100 -0.008 A MAX T = +25°C - 2.4V, DG528 -200 = ±10V, A MAX D = 0.8V +25°C -10 A DG529 = 2. -100 -0.015 A MAX T = +25° 2. -30 A MAX T = +25° ...

Page 3

... +25° +25° +25° 0V 1kΩ +25° 500kHz RMS T = +25° 0V 140kHz +25° 0V, DG528 T = +25°C A DG529 T = +25° +25° +25°C -1 300 180 (Note 5) 500 S ...

Page 4

... V IN SWITCH 80% OUTPUT Figure 2. Open-Time (B.B.M.) Interval Test Circuit 4 _______________________________________________________________________________________ +2.4V LOGIC INPUT 50 +2.4V t TRANSITION LOGIC INPUT 50 +2.4V +1.5V LOGIC INPUT 50 t OPEN +15V DG528 V+ IN1 EN ±10V RS IN2 TO IN7 SWITCH A0 IN8 ±10V OUTPUT A1 OUT GND WR V- 35pF 1M -15V +15V DG529 V+ IN1B ±10V EN RS ...

Page 5

... EN LOGIC INPUT IN1A TO IN4A 50 A0 IN2B, IN3B, IN4B A1 OUTB OUT GND WR +2.4V EN A0, A1 (A2) REMAINING SWITCHES RS WR OUTB OUT LOGIC 0 INPUT GND RS WR +15V DG528 V+ IN1 -5V SWITCH OUTPUT OUT 35pF 1k -15V +15V DG529 V+ IN1B -5V OUTA SWITCH OUTPUT 35pF 1k -15V ...

Page 6

... IS THE MEASURE OF VOLTAGE ERROR DUE TO O CHARGE INJECTION. THE CHARGE INJECTION IN COULOMBS Figure 6. Charge-Injection Test Circuit +3V +1. +3V +2.0V EN, A0, A1, (A2) +0.8V 0 Figure 7. Typical Timing Diagrams for DG528/DG529 6 _______________________________________________________________________________________ t OFF(RS) 0 GEN V GEN SHOWN + ...

Page 7

... No current is drawn from the negative supply, so Maxim’s MAX635 DC-DC converter is an ideal choice. The EN latch allows all switches to be turned off under program control. This is useful when two or more DG528s are cascaded to build 16-line and larger ana- log-signal multiplexers ...

Page 8

... The switching delays increase by about a factor of two at ±5V, and break- before-make action is preserved. The DG528/DG529 can operate with a single +5V to +30V supply as well as asymmetrical power supplies like +15V and -5V. The digital threshold will remain approximately 1.6V above the GND pin, and the analog ...

Page 9

... Latchable Multiplexers RESET MICROPROCESSOR SYSTEM BUS WR ADDRESS BUS ADDRESS DECODER Figure 9. Bus Interface _____________________________________________Pin Configurations (continued) TOP VIEW DG528 LCC/PLCC _______________________________________________________________________________________ +15V V+ A0 DATA BUS +5V 7432 -15V ...

Page 10

... Contact factory for availability and processing to MIL-STD-883. 10 ______________________________________________________________________________________ _________________Chip Topographies PIN-PACKAGE TRANSISTOR COUNT: 200 SUBSTRATE CONNECTED S1A S2A S3A S4A TRANSISTOR COUNT: 200 SUBSTRATE CONNECTED TO V+ DG528 GND 0.125" (3.18mm 0.131" (3.33mm) DG529 GND 0.125" (3.18mm) ...

Page 11

Latchable Multiplexers ________________________________________________________Package Information ______________________________________________________________________________________ 0° - 15° Plastic DIP PKG. PLASTIC P P DUAL-IN-LINE P PACKAGE ...

Page 12

... B S1 Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are implied ...

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