5962-9583401Q2A National Semiconductor, 5962-9583401Q2A Datasheet

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5962-9583401Q2A

Manufacturer Part Number
5962-9583401Q2A
Description
LVDS QUAD CMOS DIFF - RECIEVER
Manufacturer
National Semiconductor
Datasheet
© 2010 National Semiconductor Corporation
LVDS Quad CMOS Differential Line Receiver
General Description
The DS90C032 is a quad CMOS differential line receiver de-
signed for applications requiring ultra low power dissipation
and high data rates.
The DS90C032 accepts low voltage differential input signals
and translates them to CMOS (TTL compatible) output levels.
The receiver supports a TRI-STATE
used to multiplex outputs. The receiver also supports OPEN
Failsafe and terminated (100Ω) input Failsafe with the addi-
tion of external failsafe biasing. Receiver output will be HIGH
for both Failsafe conditions.
The DS90C032 provides power-off high impedance LVDS in-
puts. This feature assures minimal loading effect on the LVDS
bus lines when VCC is not present.
The DS90C032 and companion line driver (DS90C031) pro-
vide a new alternative to high power pseudo-ECL devices for
high speed point-to-point interface applications.
Ordering Information
Connection Diagrams
TRI-STATE
NS Part Number
DS90C032E-QML
DS90C032W-QMLV
DS90C032WLQMLV
DS90C032WGLQMLV
®
is a registered trademark of National Semiconductor Corporation.
5962–9583401Q2A
5962–9583401VFA
5962L9583401VFA
5962L9583401VZA
®
SMD Part Number
function that may be
See NS Package Number W16A & WG16A
201637
50 krad(Si)
50 krad(Si)
DS90C032QML
Dual-In-Line Pictured
Features
NS Package Number
Single Event Latchup (SEL) Immune
High impedance LVDS inputs with power-off.
Accepts small swing (330 mV) differential signal levels
Low power dissipation.
Low differential skew.
Low chip to chip skew.
Pin compatible with DS26C32A
Compatible with IEEE 1596.3 SCI LVDS standard
WG16A
W16A
W16A
E20A
20163701
20LD Leadless Chip Carrier
16LD Ceramic Flatpack
16LD Ceramic Flatpack
16LD Ceramic SOIC
Package Description
September 28, 2010
120 MeV-cm
www.national.com
2
/mg

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5962-9583401Q2A Summary of contents

Page 1

... Pin compatible with DS26C32A ■ Compatible with IEEE 1596.3 SCI LVDS standard SMD Part Number NS Package Number 5962–9583401Q2A 5962–9583401VFA 5962L9583401VFA 50 krad(Si) 5962L9583401VZA 50 krad(Si) Dual-In-Line Pictured See NS Package Number W16A & WG16A 201637 September 28, 2010 120 MeV-cm Package Description E20A ...

Page 2

Functional Diagram and Truth Tables www.national.com Leadless Chip Carrier Package 20163720 See NS Package Number E20A 20163702 2 ...

Page 3

Receiver ENABLES EN L All other combinations of ENABLE inputs INPUTS EN* R − I− ≥ V 0.1V ID ≤ V −0. OUTPUT www.national.com ...

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Absolute Maximum Ratings Supply Voltage ( Input Voltage ( − Enable Input Voltage (EN, EN*) Output Voltage ( Storage Temperature Range (T ) Stg Lead Temperature Range Soldering (4 sec.) Maximum Package ...

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DS90C032 Electrical Characteristics DC Parameters (Note 7) Symbol Parameter V Differential Input Low Threshold V ThL V Differential Input High Threshold V ThH I Input Current In ( Input Pins) V Output High Voltage OH V Output Low Voltage OL ...

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Symbol Parameter t Enable Time Z to High PZH t Enable Time Z to Low PZL AC/DC Post Radiation Limits Symbol Parameter I No Load Supply Current Load Supply Current CCZ Receivers Disabled Note 1: Absolute Maximum ...

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Parameter Measurement Information FIGURE 1. Receiver Propagation Delay and Transition Time Test Circuit FIGURE 2. Receiver Propagation Delay and Transition Time Waveforms C includes load and test jig capacitance for t and t measurements ...

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Typical Performance Characteristics Output High Voltage vs Power Supply Voltage www.national.com FIGURE 4. Receiver TRI-STATE Delay Waveforms 20163708 8 20163706 Output High Voltage vs Ambient Temperature 20163709 ...

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Output Low Voltage vs Power Supply Voltage 20163710 Output Short Circuit Current vs Power Supply Voltage 20163712 Output Low Voltage vs Ambient Temperature Output Short Circuit Current vs Ambient Temperature 9 20163711 20163713 www.national.com ...

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Differential Propagation Delay vs Power Supply Voltage Differential Skew vs Power Supply Voltage www.national.com Differential Propagation Delay vs Ambient Temperature 20163714 Differential Skew vs Ambient Temperature 20163716 10 20163715 20163717 ...

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Transition Time vs Power Supply Voltage Typical Application Applications Information LVDS drivers and receivers are intended to be primarily used in an uncomplicated point-to-point configuration as is shown in Figure 5. This configuration provides a clean signaling en- vironment for ...

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TRI-STATE or in power-off condition. The use of external biasing resistors provide a small bias to set the differential input voltage while the line is un-driven, and therefore the re- ceiver output will be in HIGH state. If ...

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Revision History Released Revision 03/01/06 A New Release, Corporate format 10/10/06 B Applications Information - Pg. 10, Physical Dimensions - Pg. 12 05/07/07 C Receiver Table - Pg. 2, Application Information - Pg. 9 & 10 9/28/2010 D Order Information ...

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Physical Dimensions www.national.com inches (millimeters) unless otherwise noted 20-Lead Ceramic Leadless Chip Carrier NS Package Number E20A 16-Lead Ceramic Flatpack NS Package Number W16A 14 ...

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Ceramic SOIC NS Package Number WG16A 15 www.national.com ...

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... For more National Semiconductor product information and proven design tools, visit the following Web sites at: www.national.com Products Amplifiers www.national.com/amplifiers Audio www.national.com/audio Clock and Timing www.national.com/timing Data Converters www.national.com/adc Interface www.national.com/interface LVDS www.national.com/lvds Power Management www.national.com/power Switching Regulators www.national.com/switchers LDOs www.national.com/ldo LED Lighting www ...

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