MC10H646FNG Allicdata Electronics
Allicdata Part #:

MC10H646FNG-ND

Manufacturer Part#:

MC10H646FNG

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC CLK BUFFER 2:8 80MHZ 28PLCC
More Detail: Clock Fanout Buffer (Distribution) IC 2:8 80MHz 28...
DataSheet: MC10H646FNG datasheetMC10H646FNG Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: --
Packaging: Tube 
Part Status: Obsolete
Type: Fanout Buffer (Distribution)
Number of Circuits: 1
Ratio - Input:Output: 2:8
Differential - Input:Output: Yes/No
Input: PECL, TTL
Output: TTL
Frequency - Max: 80MHz
Voltage - Supply: 4.75 V ~ 5.25 V
Operating Temperature: 0°C ~ 85°C
Mounting Type: Surface Mount
Package / Case: 28-LCC (J-Lead)
Supplier Device Package: 28-PLCC (11.51x11.51)
Base Part Number: MC10H646
Description

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MC10H646FNG is an advanced clock buffer, driver, and divider integrated circuit manufactured by On Semiconductor, a leader in semiconductor package design and construction. This device is designed to provide a low-power, low-voltage, high-performance, low-distortion clock signal output. The device can be used in a wide variety of applications, from automotive, lighting, and medical applications, to audio, video, telecommunication, and mobile phone applications. In all of these applications, the device provides an accurate, low-jitter clock signal output with minimal power drain.

The MC10H646FNG employs two different topologies: velocity-sensed differential inputs and single-ended inputs. The velocity-sensed differential inputs are designed to detect and respond quickly to frequency changes in order to provide reliable, glitch-free operation. The single-ended inputs allow the user to split the clock signal inputs, providing much better synchronization in multi-modal systems. The device also employs advanced design rules and architectures that provide a high level of noise immunity and stability, allowing it to operate under the most demanding conditions.

The MC10H646FNG offers the user a wide range of selections for the output clock frequency and levels. The device can generate output clock frequencies between 1 MHz and 50 MHz with less than 0.5% total harmonic distortion and up to 6.5 pF capacitive loading. It also provides a wide range of voltage output levels, ranging from 2.5V to 10V. The device has been designed to be compatible with all major standards for clock signals, including the traditional power industry standard (24V PFC).

The MC10H646FNG can be used to drive multiple clock signals simultaneously. It enables the user to easily and conveniently supply multiple clock signals to multiple devices with just one device. Additionally, the device can also be used in systems that consist of multiple clock domains due to its 3-state logic control mechanism. This 3-state logic control can also be used to reduce the overall power consumption of the device.

The device is designed with a current-mode output stage, which allows it to achieve very low propagation delay with minimal power consumption. The MC10H646FNG also employs several advanced protection circuits which provide protection against unexpected power supply drops and transient voltages. The device also comes with an adjustable slew rate, which allows the user to adjust the response time of the output signals acording to their particular applications’ needs.

In summary, the MC10H646FNG is an advanced clock buffer, driver, and divider integrated circuit which offers a high level of performance and low power consumption. It can be used in a wide variety of applications, such as automotive, lighting, medical, audio, video, telecommunications and mobile phone applications, providing an accurate, low-jitter clock signal output with minimal power drain. It can also drive multiple clocks simultaneously, while its 3-state logic control mechanism allows it to reduce overall power consumption. The device provides a wide range of voltage output levels and frequencies, as well as an adjustable slew rate, and is protected against unexpected power supply drops and transient voltages.

The specific data is subject to PDF, and the above content is for reference

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