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Clock Driver, 1:5 Differential, Dual ECL / PECL / HSTL, 2.5 V / 3.3 V, 32 LEAD LQFP 7x7, 0.8P, 2000-REEL
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.
MC100LVEP210FARG by onsemi is a Clock Driver.
Clock Drivers are under the broader part category of Logic Components.
Digital logic governs the behavior of signals in electronic circuits, enabling complex decisions based on simple binary inputs (yes/no). Logic components perform operations from these signals. Read more about Logic Components on our Logic part category page.
Part # | Distributor | Description | Stock | Price | Buy | |
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DISTI #
98H0650
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Newark | Clock Driver, 3Ghz, -40 To 85Deg C, Clock Ic Type:Clock Driver, Frequency:3Ghz, No. Of Outputs:5Outputs, Supply Voltage Min:2.375V, Supply Voltage Max:3.8V, Clock Ic Case Style:Lqfp, No. Of Pins:32Pins, Operating Temperature Max:85°Crohs Compliant: Yes |Onsemi MC100LVEP210FARG RoHS: Compliant Min Qty: 2000 Package Multiple: 1 Date Code: 0 Container: Reel | 0 |
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$12.3600 | Buy Now |
DISTI #
MC100LVEP210FARGOSCT-ND
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DigiKey | IC CLK/DRVR DUAL DIF 1:5 32-LQFP Min Qty: 1 Lead time: 14 Weeks Container: Digi-Reel®, Cut Tape (CT), Cut Tape (CT), Digi-Reel®, Tape & Reel (TR) |
2049 In Stock |
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$12.9791 / $22.0100 | Buy Now |
DISTI #
MC100LVEP210FARG
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Avnet Americas | Clock Buffer, Driver, Fanout, 3 GHz, 5 Outputs, 2.375 V to 3.8 V, 32 Pins, LQFP-EP - Tape and Reel (Alt: MC100LVEP210FARG) RoHS: Compliant Min Qty: 2000 Package Multiple: 2000 Lead time: 14 Weeks, 0 Days Container: Reel | 6000 Factory Stock |
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$12.8189 / $14.0315 | Buy Now |
DISTI #
863-MC100LVEP210FARG
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Mouser Electronics | Clock Buffer 2.5V/3.3V 1:5 Dual ECL/PECL/HST Driver RoHS: Compliant | 0 |
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$12.9700 | Order Now |
DISTI #
V79:2366_28619922
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Arrow Electronics | Clock Driver 10-OUT 2-IN 1:5 32-Pin LQFP T/R RoHS: Compliant Min Qty: 1 Package Multiple: 1 Date Code: 2226 | Americas - 2000 |
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$12.1100 / $13.3100 | Buy Now |
DISTI #
V72:2272_07310582
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Arrow Electronics | Clock Driver 10-OUT 2-IN 1:5 32-Pin LQFP T/R RoHS: Compliant Min Qty: 1 Package Multiple: 1 Lead time: 14 Weeks Date Code: 1844 Container: Cut Strips | Americas - 491 |
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$13.4430 / $13.5950 | Buy Now |
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Onlinecomponents.com | Clock Driver, 1:5 Differential, Dual ECL / PECL / HSTL, 2.5 V / 3.3 V RoHS: Compliant | 0 |
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$13.1600 / $38.6300 | Buy Now |
DISTI #
87650915
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Verical | Clock Driver 10-OUT 2-IN 1:5 32-Pin LQFP T/R RoHS: Compliant Min Qty: 2000 Package Multiple: 2000 | Americas - 6000 |
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$13.0608 | Buy Now |
DISTI #
86006841
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Verical | Clock Driver 10-OUT 2-IN 1:5 32-Pin LQFP T/R RoHS: Compliant Min Qty: 25 Package Multiple: 1 Date Code: 1101 | Americas - 4444 |
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$13.6250 / $17.0250 | Buy Now |
DISTI #
86015204
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Verical | Clock Driver 10-OUT 2-IN 1:5 32-Pin LQFP T/R RoHS: Compliant Min Qty: 25 Package Multiple: 1 Date Code: 1301 | Americas - 2000 |
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$13.6250 / $17.0250 | Buy Now |
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MC100LVEP210FARG
onsemi
Buy Now
Datasheet
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Compare Parts:
MC100LVEP210FARG
onsemi
Clock Driver, 1:5 Differential, Dual ECL / PECL / HSTL, 2.5 V / 3.3 V, 32 LEAD LQFP 7x7, 0.8P, 2000-REEL
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Pbfree Code | Yes | |
Rohs Code | Yes | |
Part Life Cycle Code | Active | |
Ihs Manufacturer | ONSEMI | |
Part Package Code | 32 LEAD LQFP 7x7, 0.8P | |
Package Description | LQFP-32 | |
Pin Count | 32 | |
Manufacturer Package Code | 561AB | |
Reach Compliance Code | compliant | |
HTS Code | 8542.39.00.01 | |
Factory Lead Time | 18 Weeks | |
Samacsys Manufacturer | onsemi | |
Additional Feature | NECL MODE: VCC = 0V WITH VEE = -2.375V TO -3.8V | |
Family | 100LVE | |
Input Conditioning | DIFFERENTIAL | |
JESD-30 Code | S-PQFP-G32 | |
JESD-609 Code | e3 | |
Length | 7 mm | |
Logic IC Type | LOW SKEW CLOCK DRIVER | |
Moisture Sensitivity Level | 2 | |
Number of Functions | 2 | |
Number of Inverted Outputs | ||
Number of Terminals | 32 | |
Number of True Outputs | 5 | |
Operating Temperature-Max | 85 °C | |
Operating Temperature-Min | -40 °C | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | LQFP | |
Package Equivalence Code | QFP32,.35SQ,32 | |
Package Shape | SQUARE | |
Package Style | FLATPACK, LOW PROFILE | |
Peak Reflow Temperature (Cel) | 260 | |
Prop. Delay@Nom-Sup | 0.75 ns | |
Propagation Delay (tpd) | 0.43 ns | |
Qualification Status | Not Qualified | |
Same Edge Skew-Max (tskwd) | 0.025 ns | |
Seated Height-Max | 1.6 mm | |
Supply Voltage-Max (Vsup) | 3.8 V | |
Supply Voltage-Min (Vsup) | 2.375 V | |
Supply Voltage-Nom (Vsup) | 2.5 V | |
Surface Mount | YES | |
Technology | ECL | |
Temperature Grade | INDUSTRIAL | |
Terminal Finish | Matte Tin (Sn) - annealed | |
Terminal Form | GULL WING | |
Terminal Pitch | 0.8 mm | |
Terminal Position | QUAD | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Width | 7 mm |
This table gives cross-reference parts and alternative options found for MC100LVEP210FARG. 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 MC100LVEP210FARG, 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 |
---|---|---|---|---|
MC100LVEP210FAG | onsemi | $13.2803 | Clock Driver, 1:5 Differential, Dual ECL / PECL / HSTL, 2.5 V / 3.3 V, 32 LEAD LQFP 7x7, 0.8P, 250-JTRAY | MC100LVEP210FARG vs MC100LVEP210FAG |
MC100LVEP210FAR2 | onsemi | Check for Price | 100LVE SERIES, LOW SKEW CLOCK DRIVER, 5 TRUE OUTPUT(S), 0 INVERTED OUTPUT(S), PQFP32, PLASTIC, LQFP-32 | MC100LVEP210FARG vs MC100LVEP210FAR2 |
MC100EP210FA | Integrated Device Technology Inc | Check for Price | Low Skew Clock Driver, 100E Series, 5 True Output(s), 0 Inverted Output(s), ECL, PQFP32, PLASTIC, LQFP-32 | MC100LVEP210FARG vs MC100EP210FA |
SY100EP210UTITR | Micrel Inc | Check for Price | Low Skew Clock Driver, 100E Series, 5 True Output(s), 0 Inverted Output(s), ECL, PQFP32, TQFP-32 | MC100LVEP210FARG vs SY100EP210UTITR |
SY100EP210UTCTR | Microchip Technology Inc | Check for Price | Low Skew Clock Driver | MC100LVEP210FARG vs SY100EP210UTCTR |
MC100ES6210FA | Integrated Device Technology Inc | Check for Price | Low Skew Clock Driver, 100E Series, 5 True Output(s), 0 Inverted Output(s), ECL, PQFP32, LQFP-32 | MC100LVEP210FARG vs MC100ES6210FA |
MC100LVEP210FA | onsemi | Check for Price | 100LVE SERIES, LOW SKEW CLOCK DRIVER, 5 TRUE OUTPUT(S), 0 INVERTED OUTPUT(S), PQFP32, PLASTIC, LQFP-32 | MC100LVEP210FARG vs MC100LVEP210FA |
The recommended PCB layout for the MC100LVEP210FARG involves keeping the input and output traces as short as possible, using a solid ground plane, and minimizing the distance between the device and the load. Additionally, it's recommended to use a 50-ohm transmission line for the input and output signals.
The MC100LVEP210FARG has a maximum junction temperature of 150°C. To handle thermal management, it's recommended to use a heat sink or a thermal pad, and to ensure good airflow around the device. The thermal resistance of the package is 25°C/W, so it's essential to calculate the junction temperature rise based on the power dissipation and thermal resistance.
The MC100LVEP210FARG is a differential ECL device, and it requires proper termination to ensure signal integrity. The recommended input termination is a 50-ohm resistor in series with a 50-ohm resistor to VCC, and the recommended output termination is a 50-ohm resistor to VCC or VEE.
To ensure signal integrity with the MC100LVEP210FARG, it's recommended to use a controlled impedance PCB, minimize the distance between the device and the load, and use a signal integrity analysis tool to simulate the signal transmission. Additionally, it's essential to follow the recommended input and output termination schemes and to use a common mode filter if necessary.
The MC100LVEP210FARG requires a stable power supply to ensure proper operation. It's recommended to use a 0.1uF ceramic capacitor in parallel with a 10uF tantalum capacitor for power supply decoupling. The capacitors should be placed as close as possible to the device's power pins.