SIT8021AI-J4-18S-6.144000E Allicdata Electronics

SIT8021AI-J4-18S-6.144000E Crystals, Oscillators, Resonators

Allicdata Part #:

1473-1354-2-ND

Manufacturer Part#:

SIT8021AI-J4-18S-6.144000E

Price: $ 0.48
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: SiTime
Short Description: OSC MEMS 6.1440MHZ LVCMOS SMD
More Detail: 6.144MHz MEMS (Silicon) LVCMOS Oscillator 1.8V Sta...
DataSheet: SIT8021AI-J4-18S-6.144000E datasheetSIT8021AI-J4-18S-6.144000E Datasheet/PDF
Quantity: 3000
1000 +: $ 0.44050
3000 +: $ 0.42582
5000 +: $ 0.41114
10000 +: $ 0.39645
Stock 3000Can Ship Immediately
$ 0.48
Specifications
Series: SiT8021
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: MEMS (Silicon)
Frequency: 6.144MHz
Function: Standby (Power Down)
Output: LVCMOS
Voltage - Supply: 1.8V
Frequency Stability: ±100ppm
Operating Temperature: -40°C ~ 85°C
Current - Supply (Max): 130µA
Ratings: --
Mounting Type: Surface Mount
Package / Case: 4-UFBGA, CSPBGA
Size / Dimension: 0.061" L x 0.033" W (1.54mm x 0.84mm)
Height - Seated (Max): 0.024" (0.60mm)
Current - Supply (Disable) (Max): 1.3µA
Description

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Oscillators

Oscillators are electronic circuits that generate a periodic, oscillating electronic signal, often a sine wave or a square wave. Oscillation is the repetitive variation, typically in time, of some measure about a central value (often a point of equilibrium) or between two or more different states. Common examples of oscillators include quartz crystals, electronic oscillators, LC circuits, and many other electronic devices that produce simple waveforms. Oscillators have many practical applications, from providing timing signals in radio and electronic systems to powering motors, medical applications, and many other applications.

SIT8021AI-J4-18S-6.144000E Oscillator

The SIT8021AI-J4-18S-6.144000E oscillator is an oscillator that is used for frequency control in a wide range of electronic and radio communication systems. It is based on a quartz crystal that oscillates at 6.144 MHz, and it acts as a natural frequency standard by providing a reference waveform to other oscillators in the circuit. It can be used as an oscillator for radio transmitter and receiver applications, as well as clock generation for digital circuits. The crystal also offers excellent stability and accuracy over a wide operating temperature range, making it ideal for use in high-performance systems.

Benefits of SIT8021AI-J4-18S-6.144000E Oscillator

The SIT8021AI-J4-18S-6.144000E oscillator offers a number of advantages over conventional oscillators. It is low cost, requires low current consumption, and offers good temperature stability. Moreover, the crystal oscillator will not drift with changes in temperature or voltage, and has an excellent power spectrum across the audible range from 10 kHz to 500 kHz. The design also includes an advanced buffer with high isolation, which allows the oscillator to be used in sensitive and extreme environments.

Applications of SIT8021AI-J4-18S-6.144000E Oscillator

The SIT8021AI-J4-18S-6.144000E oscillator is ideal for a wide range of applications in radio communications, especially in Wireless LANs (WLANs), digital baseband, cellular base transceiver station (BTS), and broadcast applications. In addition, it can be used in navigation systems, remote controllers, RFID, medical systems, and many other digital and wireless applications. The oscillator’s excellent temperature stability makes it suitable for use in mission critical applications.

Working Principle of SIT8021AI-J4-18S-6.144000E Oscillator

The SIT8021AI-J4-18S-6.144000E oscillator uses piezoelectric crystals to generate a stable signal of 6.144 MHz, which is maintained even when changes in temperature occur. The crystal works by applying a voltage to a quartz crystal, which causes mechanical vibrations in its quartz lattice structure. These vibrations generate oscillations at a frequency determined by the crystal’s physical properties. The frequency of the oscillations cannot be affected by external factors, as the crystal’s physical properties remain unchanged. The output of the oscillator is conditioned and buffered to ensure a consistent signal with a low level of electrical noise. The crystals can also be adjusted to achieve higher frequency stability by using suitable temperature compensation techniques.

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

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