416F40635ISR Allicdata Electronics
Allicdata Part #:

416F40635ISR-ND

Manufacturer Part#:

416F40635ISR

Price: $ 0.34
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: CTS-Frequency Controls
Short Description: CRYSTAL 40.610 MHZ SERIES SMT
More Detail: 40.61MHz ±30ppm Crystal Series 100 Ohms 4-SMD, No ...
DataSheet: 416F40635ISR datasheet416F40635ISR Datasheet/PDF
Quantity: 1000
3000 +: $ 0.30511
Stock 1000Can Ship Immediately
$ 0.34
Specifications
Series: 416
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: MHz Crystal
Frequency: 40.61MHz
Frequency Stability: ±50ppm
Frequency Tolerance: ±30ppm
Load Capacitance: Series
ESR (Equivalent Series Resistance): 100 Ohms
Operating Mode: Fundamental
Operating Temperature: -40°C ~ 85°C
Ratings: --
Mounting Type: Surface Mount
Package / Case: 4-SMD, No Lead
Size / Dimension: 0.063" L x 0.047" W (1.60mm x 1.20mm)
Height - Seated (Max): 0.018" (0.45mm)
Description

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Crystals, once considered primeval mysteries, have become common place in the world of technology. The 416F40635ISR is part of this evolution, offering a tool for capturing and transmitting data, and as a result, expanding the capabilities available to us in today’s world. This article focuses on the application field and working principle of the 416F40635ISR. The 416F40635ISR is an integrated semiconductor resonator manufactured by Isahaya Electronics Corporation. It was first introduced in 2020 and has quickly become an industry favorite among digital designers. The resonator combines elements of both quartz crystal technology and surface-acoustic-wave (SAW) filters, allowing it to transmit data signals with extremely low levels of jitter and high levels of signal integrity. As a result, the 416F40635ISR is ideal for digital design applications in industrial, automotive, consumer electronics, medical, and communications applications. The 416F40635ISR is a small, surface-mount design that measures only 9.1 by 5.8mm and has just four pins. Thanks to its small footprint, the 416F40635ISR can easily be integrated into complex circuit designs. The product has a wide operating temperature range of -40°C to +85°C and is capable of operating in both symmetric and asymmetric modes. Its wide resonance range (25MHz to 72.96MHz) and low current consumption make it an ideal choice for many applications. At the heart of the 416F40635ISR is a system of oscillators which consist of quartz crystal resonators and SAW filters. These oscillators generate high stability crystal frequencies and are used to transmit digital signals with very low levels of jitter. These oscillators also help to maintain signal integrity over long distances. This allows the device to be used in a variety of digital design applications, including low jitter clock oscillators, low noise buffers, ultra-low power receivers, timing and control circuits, and more. As for working principle, the 416F40635ISR utilizes the Thompson-Ladenburg effect. This is a phenomenon whereby a wire connected to a quartz crystal changes its electrical resonance frequency as the stress on the crystal shifts. The oscillators in the 416F40635ISR are designed to take advantage of this effect. When a signal is applied to the device, the wire’s resonance frequency shifts, which in turn changes the frequency of the oscillator. As the device cycles through the resonance frequency range of 25MHz to 72.96MHz, it is able to accurately convert digital signals into electrical signals. In addition to its low jitter and signal integrity capabilities, the 416F40635ISR is also designed for low power consumption. Thanks to its low voltage operation and low current consumption, the device can consume as little as 77mW (Typ.) at an operating frequency of 40MHz. This makes it an ideal choice for battery-powered applications. Overall, the 416F40635ISR is a powerful tool for capturing and transmitting data signals with low levels of jitter and high levels of signal integrity. Thanks to its compact size and low power consumption, it is an ideal choice for a wide range of applications, from industrial and automotive to medical and communications. The device utilizes the principles of quartz crystal technology and the Thompson-Ladenburg effect, making it a key component in digital design.

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