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DS1100L

Maxim Integrated
Part Number DS1100L
Manufacturer Maxim Integrated
Description 3.3V 5-Tap Economy Timing Element
Published Mar 26, 2020
Detailed Description DS1100L 3.3V 5-Tap Economy Timing Element (Delay Line) GENERAL DESCRIPTION The DS1100L is a 3.3V version of the DS1100....
Datasheet PDF File DS1100L PDF File

DS1100L
DS1100L



Overview
DS1100L 3.
3V 5-Tap Economy Timing Element (Delay Line) GENERAL DESCRIPTION The DS1100L is a 3.
3V version of the DS1100.
It is characterized for operation over the range 3.
0V to 3.
6V.
The DS1100L series delay lines have five equally spaced taps providing delays from 4ns to 500ns.
These devices are offered in surface-mount packages to save PCB area.
Low cost and superior reliability over hybrid technology is achieved by the combination of a 100% silicon delay line and industry-standard µMAX® and SO packaging.
The DS1100L 5-tap silicon delay line reproduces the input-logic state at the output after a fixed delay as specified by the extension of the part number after the dash.
The DS1100L is designed to reproduce both leading and trailing edges with equal precision.
Each tap is capable of driving up to 10 74LS loads.
Maxim Integrated can customize standard products to meet special needs.
FEATURES  All-Silicon Timing Circuit  Five Taps Equally Spaced  Delays are Stable and Precise  Both Leading- and Trailing-Edge Accuracy  3.
3V Version of the DS1100  Low-Power CMOS  TTL-/CMOS-Compatible  Vapor-Phase and IR Solderable  Custom Delays Available  Fast-Turn Prototypes  Delays Specified Over Both Commercial and Industrial Temperature Ranges PIN ASSIGNMENT IN 1 8 VCC TAP 2 2 TAP 4 3 DS1100L 7 TAP 1 6 TAP 3 µMAX is a registered trademark of Maxim Integrated Products, Inc.
GND 4 DS1100LZ SO (150mils) DS1100LU µMAX 5 TAP 5 PIN DESCRIPTION TAP 1 to TAP 5 - TAP Output Number VCC - +3.
3V GND - Ground IN - Input 19-5736; Rev 7/15 1 of 7 ABSOLUTE MAXIMUM RATINGS Voltage Range on Any Pin Relative to Ground .
.
.
-0.
5V to +6.
0V Short-Circuit Output Current.
50mA for 1s Continuous Power Dissipation (TA = +70°C) SO (derate 5.
9mW/°C above +70°C) .
.
.
.
470.
6mW µMAX (derate 4.
5mW/°C above ...



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