Part Details for SN65LVDS050DR by Texas Instruments
Results Overview of SN65LVDS050DR by Texas Instruments
- Distributor Offerings: (4 listings)
- Number of FFF Equivalents: (3 replacements)
- Tariff Estimator: (Available) NEW
- Number of Functional Equivalents: (10 options)
- CAD Models: (Available)
- Part Data Attributes: (Available)
- Reference Designs: (Not Available)
Tip: Data for a part may vary between manufacturers. You can filter for manufacturers on the top of the page next to the part image and part number.
SN65LVDS050DR Information
SN65LVDS050DR by Texas Instruments is a Line Driver or Receiver.
Line Driver or Receivers are under the broader part category of Drivers And Interfaces.
A driver controls the current or voltage delivered to components like LCDs or motors, while an interface component connects systems for data transfer and control. Read more about Drivers And Interfaces on our Drivers And Interfaces part category page.
Price & Stock for SN65LVDS050DR
| Part # | Distributor | Description | Stock | Price | Buy | |
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Bristol Electronics | 1752 |
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RFQ | ||
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Rochester Electronics | Line Transceiver, 2 Func, 2 Driver, 2 Rcvr, BIPolar, PDSO16 RoHS: Compliant Status: Active Min Qty: 1 | 63650 |
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$1.9100 / $2.3900 | Buy Now |
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Ameya Holding Limited | IC DIFF LINE DVR/RCVR HS 16-SOIC | 37201 |
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RFQ | |
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LCSC | Transceiver 3.3V3.6V SOIC-16 Drivers Receivers Transceivers RoHS | 5 |
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$5.1701 / $5.4882 | Buy Now |
US Tariff Estimator: SN65LVDS050DR by Texas Instruments
Calculations from this tool are estimations only for imports into the United States. Please refer to the distributor or manufacturer and reference official US government sources and authorities to verify any final purchase costs.
Part Details for SN65LVDS050DR
SN65LVDS050DR CAD Models
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SN65LVDS050DR Part Data Attributes
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SN65LVDS050DR
Texas Instruments
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Datasheet
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SN65LVDS050DR
Texas Instruments
Dual LVDS transceiver 16-SOIC -40 to 85
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| Pbfree Code | Yes | |
| Rohs Code | Yes | |
| Part Life Cycle Code | Active | |
| Part Package Code | SOIC | |
| Package Description | Sop, Sop14,.25 | |
| Pin Count | 16 | |
| Reach Compliance Code | Compliant | |
| ECCN Code | EAR99 | |
| HTS Code | 8542.39.00.60 | |
| Differential Output | Yes | |
| Driver Number of Bits | 2 | |
| High Level Input Current-Max | 0.00002 A | |
| Input Characteristics | Differential | |
| Interface IC Type | Line Transceiver | |
| Interface Standard | Eia-644; Tia-644 | |
| JESD-30 Code | R-PDSO-G16 | |
| JESD-609 Code | e4 | |
| Length | 9.9 Mm | |
| Moisture Sensitivity Level | 1 | |
| Number of Functions | 2 | |
| Number of Terminals | 16 | |
| Operating Temperature-Max | 85 °C | |
| Operating Temperature-Min | -40 °C | |
| Out Swing-Min | 0.247 V | |
| Output Characteristics | Differential | |
| Output Low Current-Max | 0.00002 A | |
| Output Polarity | Complementary | |
| Package Body Material | Plastic/Epoxy | |
| Package Code | SOP | |
| Package Equivalence Code | SOP14,.25 | |
| Package Shape | Rectangular | |
| Package Style | Small Outline | |
| Peak Reflow Temperature (Cel) | 260 | |
| Qualification Status | Not Qualified | |
| Receive Delay-Max | 4.5 Ns | |
| Receiver Number of Bits | 2 | |
| Seated Height-Max | 1.75 Mm | |
| Supply Current-Max | 20 Ma | |
| Supply Voltage-Max | 3.6 V | |
| Supply Voltage-Min | 3 V | |
| Supply Voltage-Nom | 3.3 V | |
| Supply Voltage1-Max | 3.6 V | |
| Supply Voltage1-Min | 3 V | |
| Supply Voltage1-Nom | 3.3 V | |
| Surface Mount | Yes | |
| Technology | Bipolar | |
| Temperature Grade | Industrial | |
| Terminal Finish | Nickel/Palladium/Gold (Ni/Pd/Au) | |
| Terminal Form | Gull Wing | |
| Terminal Pitch | 1.27 Mm | |
| Terminal Position | Dual | |
| Time@Peak Reflow Temperature-Max (s) | 30 | |
| Transmit Delay-Max | 2.7 Ns | |
| Width | 3.9 Mm |
Alternate Parts for SN65LVDS050DR
This table gives cross-reference parts and alternative options found for SN65LVDS050DR. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of SN65LVDS050DR, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.
| Part Number | Manufacturer | Composite Price | Description | Compare |
|---|---|---|---|---|
| PI90LVB050W | Pericom Semiconductor Corporation | Check for Price | Line Transceiver, 2 Func, 2 Driver, 2 Rcvr, BIPolar, PDSO16, SOIC-16 | SN65LVDS050DR vs PI90LVB050W |
| STLVDS050BDR | STMicroelectronics | Check for Price | DUAL LINE TRANSCEIVER, PDSO16, SOP-16 | SN65LVDS050DR vs STLVDS050BDR |
| PI90LVB050WE | Pericom Semiconductor Corporation | Check for Price | Line Transceiver, 2 Func, 2 Driver, 2 Rcvr, CMOS, PDSO16, GREEN, SOIC-16 | SN65LVDS050DR vs PI90LVB050WE |
SN65LVDS050DR Frequently Asked Questions (FAQ)
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The maximum cable length supported by the SN65LVDS050DR is approximately 10 meters (33 feet) at a data rate of 655 Mbps. However, this length can vary depending on the specific application, cable quality, and noise environment.
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The LVDS outputs of the SN65LVDS050DR should be terminated with a 100-ohm differential load to ensure proper signal integrity and to minimize reflections. A 100-ohm resistor can be connected between the positive and negative outputs of each channel.
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The power consumption of the SN65LVDS050DR depends on the operating frequency and output load. At a typical operating frequency of 65 MHz, the device consumes around 150 mW of power. However, this value can vary depending on the specific application and operating conditions.
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Yes, the SN65LVDS050DR is designed for high-speed data transmission over long distances. It supports data rates up to 655 Mbps and is suitable for applications such as flat-panel displays, projectors, and other high-speed digital interfaces.
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To ensure signal integrity when using the SN65LVDS050DR, it is recommended to use a high-quality cable with a characteristic impedance of 100 ohms, keep the cable length as short as possible, and use proper termination and shielding to minimize electromagnetic interference (EMI).