EEWORLDEEWORLDEEWORLD

Part Number

Search

SIT1602BI-31-25N-24.000000T

Description
-40 TO 85C, 5032, 20PPM, 2.5V, 2
CategoryPassive components   
File Size975KB,17 Pages
ManufacturerSiTime
Environmental Compliance
Download Datasheet View All

SIT1602BI-31-25N-24.000000T Overview

-40 TO 85C, 5032, 20PPM, 2.5V, 2

SiT1602B
Low Power, Standard Frequency Oscillator
Features
Applications
52 standard frequencies between 3.57 MHz and 77.76 MHz
100% pin-to-pin drop-in replacement to quartz-based XO
Excellent total frequency stability as low as ±20 ppm
Operating temperature from -40°C to 85°C. For 125°C and/or
-55°C options, refer to
SiT1618, SiT8918, SiT8920
Low power consumption of 3.5 mA typical at 1.8V
Standby mode for longer battery life
Fast startup time of 5 ms
LVCMOS/HCMOS compatible output
Industry-standard packages: 2.0 x 1.6, 2.5 x 2.0, 3.2 x 2.5,
5.0 x 3.2, 7.0 x 5.0 mm x mm
Instant samples with
Time Machine II
and
Field Programmable
Oscillators
Ideal for DSC, DVC, DVR, IP CAM, Tablets, e-Books,
SSD, GPON, EPON, etc
Ideal for high-speed serial protocols such as: USB,
SATA, SAS, Firewire, 100M / 1G / 10G Ethernet, etc.
RoHS and REACH compliant, Pb-free, Halogen-free and
Antimony-free
For AEC-Q100 oscillators, refer to
SiT8924
and
SiT8925
Electrical Characteristics
All Min and Max limits are specified over temperature and rated operating voltage with 15 pF output load unless otherwise
stated. Typical values are at 25°C and nominal supply voltage.
Table 1. Electrical Characteristics
Parameters
Output Frequency Range
Symbol
f
Min.
Typ.
Max.
Unit
Condition
Refer to
Table 13
for the exact list of supported frequencies
Frequency Range
52 standard frequencies between
MHz
3.57 MHz and 77.76 MHz
-20
-25
-50
-20
-40
1.62
2.25
2.52
2.7
2.97
2.25
45
90%
Frequency Stability
F_stab
Frequency Stability and Aging
+20
ppm
Inclusive of initial tolerance at 25°C, 1st year aging at 25°C,
and variations over operating temperature, rated power
+25
ppm
supply voltage and load.
+50
ppm
Operating Temperature Range
+70
°C
Extended Commercial
+85
°C
Industrial
Supply Voltage and Current Consumption
1.8
1.98
V
Contact
SiTime
for 1.5V support
2.5
2.75
V
2.8
3.08
V
3.0
3.3
V
3.3
3.63
V
3.63
V
3.8
4.5
mA
No load condition, f = 20 MHz, Vdd = 2.8V to 3.3V
3.7
4.2
mA
No load condition, f = 20 MHz, Vdd = 2.5V
3.5
4.1
mA
No load condition, f = 20 MHz, Vdd = 1.8V
4.2
mA
Vdd = 2.5V to 3.3V, OE = GND, Output in high-Z state
4.0
mA
Vdd = 1.8 V. OE = GND, Output in high-Z state
2.6
4.3
ST = GND, Vdd = 2.8V to 3.3V, Output is weakly pulled down
̅ ̅̅
A
1.4
2.5
ST = GND, Vdd = 2.5V, Output is weakly pulled down
̅ ̅̅
A
0.6
1.3
ST = GND, Vdd = 1.8V, Output is weakly pulled down
̅ ̅̅
A
LVCMOS Output Characteristics
1
1.3
55
2
2.5
2
%
ns
ns
ns
Vdd
All Vdds. See Duty Cycle definition in
Figure 3
and
Footnote 6
Vdd = 2.5V, 2.8V, 3.0V or 3.3V, 20% - 80%
Vdd =1.8V, 20% - 80%
Vdd = 2.25V - 3.63V, 20% - 80%
IOH = -4 mA (Vdd = 3.0V or 3.3V)
IOH = -3 mA (Vdd = 2.8V and Vdd = 2.5V)
IOH = -2 mA (Vdd = 1.8V)
IOL = 4 mA (Vdd = 3.0V or 3.3V)
IOL = 3 mA (Vdd = 2.8V and Vdd = 2.5V)
IOL = 2 mA (Vdd = 1.8V)
Operating Temperature Range
T_use
Supply Voltage
Vdd
Current Consumption
Idd
OE Disable Current
Standby Current
I_OD
I_std
Duty Cycle
Rise/Fall Time
DC
Tr, Tf
Output High Voltage
VOH
Output Low Voltage
VOL
10%
Vdd
Rev 1.04
January 30, 2018
www.sitime.com
High-definition scanned version of "Electronic Design from Scratch"
[size=4][color=darkred][b] The book is divided into three parts, with a total of 17 chapters. Chapter 1 to Chapter 8 introduces the relevant knowledge of analog circuits in an easy-to-understand manne...
qwqwqw2088 Power technology
FPGA Implementation of Floating-Point LMS Algorithm
The LMS ( least mean square ) algorithm has been widely used in the fields of adaptive filters, adaptive antenna arrays, etc. due to its fast convergence speed and simple algorithm implementation. In ...
雷北城 FPGA/CPLD
51 single chip microcomputer control relay problem
The question is this: I just checked the information. I found that I need to add a pull-up resistor to the microcontroller pin. Connect to the base of the transistor, and then control the relay. But s...
libin98 51mcu
I have been struggling with a serial communication problem for a long time.
The serial port sends data one bit at a time and receives data one bit at a time. Excluding the start bit and the stop bit, there are only 8 bits of data left. When 8 bits of data are received, an int...
1157421908 TI Technology Forum
DVSDK_3.01.00.10 compilation notes
[size=4]Hardware platform:[/size] [size=4] Devkit8000[/size] [size=4] 256M DDR+256M NAND[/size] [size=4] S-video output[/size] [ size=4] [/size] [size=4] Software package: [/size] [size=4] AM35x-OMAP3...
Jacktang DSP and ARM Processors
Problems that occurred during Keil simulation, the values were not updated in time
[code]void main(){ uchar a = 0, b = 0, c = 0; float f = 123.456; a = f; f = f - a; f = f * 1000; b = (uchar)f;_nop_(); b = ((uchar)f / 100); //??? while(1) {a++;b++; }}[/code]...
upc_arm 51mcu

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 2144  639  2453  1604  2012  44  13  50  33  41 
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