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CDCLVP1208RHDR
+NomenclatureIC CLK BUFFER 2:8 2GHZ 28VQFN
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FabricantTexas Instruments
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Pièce fabricant #CDCLVP1208RHDR
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Package VQFN-28
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En stock5943
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Spécifications
| Attribut | Valeur |
| Package | Tape & Reel (TR),Cut Tape (CT),Bulk |
| ProductStatus | Active |
| Type | Fanout Buffer (Distribution), Multiplexer |
| NumberofCircuits | 1 |
| Ratio-Input:Output | 2:8 |
| Differential-Input:Output | Yes/Yes |
| Input | LVCMOS, LVDS, LVPECL, LVTTL |
| Output | LVPECL |
| Frequency-Max | 2 GHz |
| Voltage-Supply | 2.375V ~ 3.6V |
| OperatingTemperature | -40°C ~ 85°C |
| MountingType | Surface Mount |
| Package/Case | 28-VFQFN Exposed Pad |
Présentation
Description
Equivalent
1. LMK00105 from Texas Instruments
2. SY100EP111U from Microchip
3. ADCLK948 from Analog Devices
When selecting an equivalent, ensure that specifications such as input/output types, frequency range, and propagation delay meet your design requirements.
Features
1. Functionality: It offers a 1:8 differential LVPECL (Low Voltage Positive Emitter Coupled Logic) output configuration, meaning it receives a single input and provides eight identical outputs.
2. Input Compatibility: The device is compatible with various input levels, including LVPECL, LVDS (Low Voltage Differential Signaling), and CML (Current Mode Logic).
3. Low Jitter: It is designed to ensure low phase noise and minimal jitter, which are critical for maintaining signal integrity in high-speed data communication systems.
4. High Speed: The CDCLVP1208RHDR supports high-frequency clock signals, making it suitable for applications requiring fast data transmission.
5. Power Supply: Operates on a 2.5V or 3.3V power supply, offering flexibility in different system environments.
6. Temperature Range: It is suitable for use in industrial settings, with an operating temperature range from -40°C to 85°C.
These features make it ideal for use in telecommunications, networking, and high-speed computing applications.
Pinout
Manufacturer
Application
1. Telecommunications: Enhancements in data transmission and network synchronization.
2. Data Centers: Ensuring efficient data flow with minimal latency.
3. Broadcasting: Synchronizing audio and video signals.
4. High-Performance Computing: Supporting precise timing for processors and memory.
5. Test and Measurement Equipment: Providing accurate clock signals for testing devices.
6. Consumer Electronics: Improving performance in advanced electronics requiring precise timing.
These applications benefit from the device's ability to distribute clocks with minimal delay and skew.