EEWORLDEEWORLDEEWORLD

Part Number

Search

8N3QV01KG-0028CDI8

Description
Programmable Oscillators PROGRAMMABLE 5X7 OSCILLATOR
CategoryPassive components   
File Size200KB,23 Pages
ManufacturerIDT (Integrated Device Technology)
Download Datasheet Parametric View All

8N3QV01KG-0028CDI8 Online Shopping

Suppliers Part Number Price MOQ In stock  
8N3QV01KG-0028CDI8 - - View Buy Now

8N3QV01KG-0028CDI8 Overview

Programmable Oscillators PROGRAMMABLE 5X7 OSCILLATOR

8N3QV01KG-0028CDI8 Parametric

Parameter NameAttribute value
Product AttributeAttribute Value
ManufacturerIDT (Integrated Device Technology)
Product CategoryProgrammable Oscillators
RoHSN
ProductVCXO
Package / Case7 mm x 5 mm
Length7 mm
Width5 mm
Height1.55 mm
PackagingCut Tape
PackagingReel
Factory Pack Quantity1000
Unit Weight0.006562 oz
Quad-Frequency Programmable
VCXO
IDT8N3QV01 Rev G
DATA SHEET
General Description
The IDT8N3QV01 is a Quad-Frequency Programmable VCXO with
very flexible frequency and pull-range programming capabilities.
The device uses IDT’s fourth generation FemtoClock® NG
technology for an optimum of high clock frequency and low phase
noise performance. The device accepts 2.5V or 3.3V supply and is
packaged in a small, lead-free (RoHS 6) 10-lead Ceramic 5mm x
7mm x 1.55mm package.
Besides the 4 default power-up frequencies set by the FSEL0 and
FSEL1 pins, the IDT8N3QV01 can be programmed via the I
2
C
interface to any output clock frequency between 15.476MHz to
866.67MHz and from 975MHz to 1,300MHz to a very high degree of
precision with a frequency step size of 435.9Hz ÷N (N is the PLL
output divider). Since the FSEL0 and FSEL1 pins are mapped to 4
independent PLL M and N divider registers (P, MINT, MFRAC and
N), reprogramming those registers to other frequencies under
control of FSEL0 and FSEL1 is supported. The extended
temperature range supports wireless infrastructure, tele-
communication and networking end equipment requirements. The
device is a member of the high-performance clock family from IDT.
Features
Fourth generation FemtoClock® NG technology
Programmable clock output frequency from 15.476MHz to
866.67MHz and from 975MHz to 1,300MHz
Four power-up default frequencies (see part number order
codes), reprogrammable by I
2
C
I
2
C programming interface for the output clock frequency, APR
and internal PLL control registers
Frequency programming resolution is 435.9Hz ÷N
Absolute pull-range (APR) programmable from ±4.5 to
±754.5ppm
One 2.5V or 3.3V LVPECL differential clock output
Two control inputs for the power-up default frequency
LVCMOS/LVTTL compatible control inputs
RMS phase jitter @ 156.25MHz (12kHz - 20MHz):
0.487ps (typical)
RMS phase jitter @ 156.25MHz (1kHz - 40MHz):
0.614ps (typical)
2.5V or 3.3V supply voltage modes
-40°C to 85°C ambient operating temperature
Available in Lead-free (RoHS 6) package
Block Diagram
OSC
114.285 MHz
÷MINT,
MFRAC
2
VC
FSEL1
FSEL0
SCLK
SDATA
OE
Pulldown
Pulldown
Pullup
Pullup
Pullup
Pin Assignment
÷P
PFD
&
LPF
FemtoClock® NG
VCO
1950-2600MHz
÷N
Q
nQ
SDATA
SCLK
10
VC 1
OE 2
V
EE
3
4
FSEL0
9
8
7
V
CC
nQ
Q
5
6
A/D
7
25
Configuration Register (ROM)
(Frequency, APR, Polarity)
I
2
C Control
7
IDT8N3QV01 Rev G
10-lead Ceramic 5mm x 7mm x 1.55mm
package body
CD Package
Top View
IDT8N3QV01GCD REVISION A
MARCH 6, 2012
1
©2012 Integrated Device Technology, Inc.
FSEL1
New support for C++ code in STM32 and examples of user C modules written in C++ in MicroPython
In the latest update, examples of using user C/C++ modules have been added to the MicroPython source code, making it easier to add your own functional modules.stm32: Support C++ code and user C module...
dcexpert MicroPython Open Source section
I am using 2812, but after defining a 2D array, it prompts data overflow. Why? Thank you
I definedint a[8][16];int b[8][16];but in use I can only use a[2][16]; b[2][16]; if it is greater than the value, the compiler will fail to pass and prompt h0 overflow.However, when I check the variab...
fengboning Microcontroller MCU
Has anyone encountered the situation where the capacitor pulls down the voltage?
I have a circuit that needs to use 3.3V to power the sensor. I use TPS7A88 to stabilize the voltage at 3.3V, and then pass it through a 0603 1 ohm resistor and then connect it to a Murata 0805 47uF ca...
littleshrimp Integrated technical exchanges
PI design information
...
czf0408 Power technology
[Analysis of the topic of the college electronic competition] —— 2020 TI Cup E topic "Amplifier nonlinear distortion research device"
1. Mission Design and make an amplifier nonlinear distortion research device, the composition of which is shown in the figure. K1 and K2 in the figure are 1 × 2 switching switches, and the transistor ...
gmchen Electronics Design Contest
A product cannot be started after being used for a period of time. Please help me analyze it.
The product worked normally at first, the kernel and application were good. After a while, it started abnormally. The steps are to start the Bootloader, load the LOGO interface and fill the LCD displa...
chen611 Embedded System

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 482  1668  1338  180  1058  10  34  27  4  22 
Datasheet   0 1 2 3 4 5 6 7 8 9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
Room 1530, 15th Floor, Building B, No. 18 Zhongguancun Street, Haidian District, Beijing Telephone: (010) 82350740 Postal Code: 100190
Copyright © 2005-2026 EEWORLD.com.cn, Inc. All rights reserved 京ICP证060456号 京ICP备10001474号-1 电信业务审批[2006]字第258号函 京公网安备 11010802033920号