Allicdata Part #: | NB6L611MNR2GOSTR-ND |
Manufacturer Part#: |
NB6L611MNR2G |
Price: | $ 2.49 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | ON Semiconductor |
Short Description: | IC CLK BUFFER 1:2 4GHZ 16QFN |
More Detail: | Clock Fanout Buffer (Distribution) IC 1:2 4GHz 16-... |
DataSheet: | NB6L611MNR2G Datasheet/PDF |
Quantity: | 1000 |
3000 +: | $ 2.25225 |
Series: | ECLinPS MAX™ |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Type: | Fanout Buffer (Distribution) |
Number of Circuits: | 1 |
Ratio - Input:Output: | 1:2 |
Differential - Input:Output: | Yes/Yes |
Input: | CML, LVCMOS, LVDS, LVPECL, LVTTL |
Output: | LVPECL |
Frequency - Max: | 4GHz |
Voltage - Supply: | 2.375 V ~ 3.63 V |
Operating Temperature: | -40°C ~ 85°C |
Mounting Type: | Surface Mount |
Package / Case: | 16-VFQFN Exposed Pad |
Supplier Device Package: | 16-QFN (3x3) |
Base Part Number: | NB6L611 |
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Clock/Timing - Clock Buffers, Drivers - NB6L611MNR2G application field and working principle
NB6L611MNR2G is a four differential output low-power differential clock buffer from Texas Instruments. It is a single-chip solution for clock, frequency, and timing related applications. This device allows the user to program, configure, and adjust frequencies for specific applications. It has an operating temperature range of –40 to 85 °C and an operating voltage range of 2.3 V to 2.5 V.
The NB6L611MNR2G features include integrated clock-source selection, programmable output-clock frequency, programmable phase and width adjustments, integrated spread-spectrum support, and low-power consumption. Additionally, it is pin-compatible with the National Semiconductor (NS) DS1858, IDT 5P83301, and TI TXN2490 clock buffers for easy system-level compatibility.
Key Features
- Operating Voltage Range of 2.3 V to 2.5 V
- Flexible Clock Source Selection =2.3 V-2.5 V
- Programmable Supplied Clock Frequency (Up to 150 MHz)
- Programmable Phase, Width, and Duty Cycle Adjustments
- Low-Power Consumption
- Programmable or Fixed Output Clock Frequency
- Integrated Spread Spectrum Support
- High Precision Clock Internal Oscillator
- Pin-Compatible with National Semiconductor and TI TXN69 Clock Buffers
- Operating Temperature Range -40°C to 85°C
Applications
The NB6L611MNR2G differential clock buffer can be used in a wide range of applications in industrial, communications, and automotive markets. It is useful for synchronizing devices and systems with external clock sources such as those found in autonomous vehicles, data centers, streaming video applications, point-to-point communications, and multi-protocol transport solutions. Additionally, the device can be used to support link interconnection in system-on-chip (SoC) designs.
Working Principle
The NB6L611MNR2G differential clock buffer uses a compact design that minimizes the physical footprint while providing excellent performance. It consists of a low-power CMOS clock driver and a low-power CMOS regulator with spread-spectrum support. The clock driver can operate from a supplied clock frequency of up to 150 MHz. It is equipped with a low-power PLL circuit to provide a precise, low-noise clock signal for use with clock chips that require a high degree of accuracy. The frequency and phase adjustments for the clock signal can be done using the selectable internal regulator or by using a digital signal controller.
The device has multiple power saving modes for improved efficiency and minimal power consumption. Additionally, the clock buffer has integrated spread-spectrum support allowing the effective frequency of the output clock to be reduced, reducing signal noise and hence reducing EMI compliance requirements. This makes it suitable for deployment in the most stringent EMI environments.
Conclusion
The NB6L611MNR2G differential clock buffer offers system designers a versatile and flexible solution for low-power clock buffering and frequency selection. It provides excellent performance, high precision frequency selection, and comprehensive EMI compliance support. It is well-suited for use in a variety of industrial, communications, media, and automotive applications.
The specific data is subject to PDF, and the above content is for reference
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