EEWORLDEEWORLDEEWORLD

Part Number

Search

MO2021ME5-CTJ-XXE0-0121243001D

Description
LVCMOS Output Clock Oscillator,
CategoryPassive components    oscillator   
File Size858KB,12 Pages
ManufacturerDaishinku Corp.
Websitehttp://www.kds.info/
Environmental Compliance
Download Datasheet Parametric View All

MO2021ME5-CTJ-XXE0-0121243001D Overview

LVCMOS Output Clock Oscillator,

MO2021ME5-CTJ-XXE0-0121243001D Parametric

Parameter NameAttribute value
Is it Rohs certified?conform to
Objectid7202692512
Reach Compliance Codeunknown
YTEOL6.65
Other featuresENABLE/DISABLE FUNCTION; LVTTL COMPATIBLE OUTPUT ALSO AVAILABLE; TR
maximum descent time3 ns
Frequency Adjustment - MechanicalNO
frequency stability30%
Installation featuresSURFACE MOUNT
Number of terminals5
Nominal operating frequency121.243001 MHz
Maximum operating temperature125 °C
Minimum operating temperature-55 °C
Oscillator typeLVCMOS
Output load15 pF
physical size3.05mm x 1.75mm x 1.45mm
longest rise time3 ns
Maximum supply voltage3.63 V
Minimum supply voltage2.25 V
surface mountYES
maximum symmetry55/45 %
MO2021
High Frequency, -55°C to +125°C One-output Clock Generator
Features
Applications
Ruggedized equipment in harsh operating environment
Frequencies between 119.342001 MHz to 137 MHz accurate to 6
decimal places
Operating temperature from -55°C to +125°C
Supply voltage of +1.8V or +2.5V to +3.3V
Excellent total frequency stability as low as ±20 ppm
Low power consumption of +4.9 mA typical at 125 MHz, +1.8V
LVCMOS/LVTTL compatible output
5-pin SOT23-5 package: 2.9mm x 2.8mm
RoHS and REACH compliant, Pb-free, Halogen-free and
Antimony-free
Electrical Specifications
Table 1. 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.
Parameters
Output Frequency Range
Symbol
f
Min.
119.342001
-20
Frequency Stability
F_stab
-25
-30
-50
Operating Temperature Range
T_use
-55
+1.62
+2.25
Supply Voltage
Vdd
+2.52
+2.7
+2.97
+2.25
Current Consumption
Idd
OE Disable Current
I_od
Standby Current
I_std
Typ.
+1.8
+2.5
+2.8
+3.0
+3.3
+6.2
+5.4
+4.9
+2.6
+1.4
+0.6
1.0
1.3
1.0
Max.
137
+20
+25
+30
+50
+125
+1.98
+2.75
+3.08
+3.3
+3.63
+3.63
+8.0
+7.0
+6.0
+4.7
+4.5
+8.5
+5.5
+4.0
Unit
MHz
ppm
ppm
ppm
ppm
°C
V
V
V
V
V
V
mA
mA
mA
mA
mA
μA
μA
μA
No load condition, f = 125 MHz, Vdd = +2.8V, +3.0V or +3.3V
No load condition, f = 125 MHz, Vdd = +2.5V
No load condition, f = 125 MHz, Vdd = +1.8V
Vdd = +2.5V to +3.3V, OE = Low, Output in high Z state.
Vdd = +1.8V, OE = Low, Output in high Z state.
Vdd = +2.8V to +3.3V,
ST
= Low, Output is weakly pulled down
Vdd = +2.5V,
ST
= Low, Output is weakly pulled down
Vdd = +1.8V,
ST
= Low, Output is weakly pulled down
All Vdds
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 = -4.0 mA (Vdd = +3.0V or +3.3V)
IOH = -3.0 mA (Vdd = +2.8V or +2.5V)
IOH = -2.0 mA (Vdd = +1.8V)
IOL = +4.0 mA (Vdd = +3.0V or +3.3V)
IOL = +3.0 mA (Vdd = +2.8V or +2.5V)
IOL = +2.0 mA (Vdd = +1.8V)
Inclusive of Initial tolerance at +25°C, 1st year aging at +25°C,
and variations over operating temperature, rated power supply
voltage and load (15 pF ± 10%).
Condition
Refer to
Table 14
for the exact list of supported frequencies
Frequency Range
Frequency Stability and Aging
Operating Temperature Range
Supply Voltage and Current Consumption
LVCMOS Output Characteristics
Duty Cycle
Rise/Fall Time
DC
Tr, Tf
45
Output High Voltage
VOH
90%
55
2.0
2.5
3.0
%
ns
ns
ns
Vdd
Output Low Voltage
VOL
10%
Vdd
Daishinku Corp.
Rev. 1.01
1389 Shinzaike, Hiraoka-cho, Kakogawa, Hyogo 675-0194 Japan
+81-79-426-3211
www.kds.info
Revised September 29, 2015
Please tell me what type of inductor this is
I need this, but I can only find ordinary wirewound inductors. Here is a picture for reference. A little bit of power is like the picture....
btty038 RF/Wirelessly
Seeking a team that understands EPB for collaborative development
[i=s]This post was last edited by bjby81 on 2017-3-13 10:26[/i] If you are interested, please contact [url=mailto:bjby81@hotmail.com]bjby81@hotmail.com[/url] for details....
bjby81 Automotive Electronics
Ask a question
I have a question for you guys. If I make an electrical component and I connect it to a voltage of 220v or 110v, how should I judge it if I know it can be used at that voltage? For example, if I conne...
cbzg2000 Power technology
uPyLoader transfer is not stable and always fails
[font=新宋体][size=4]I didn't know Python before, and it took me a long time to figure out how to use uPyLoader. However, when transferring files, there are always transmission errors, and it can only su...
leekuip MicroPython Open Source section
Feedback coefficient expression calculation
It is really impossible to calculate a definite answer to the feedback coefficient expression corresponding to the feedback network shown in the figure above....
呜呼哀哉 Analog electronics
TPS63020 heating problem with load
[i=s]This post was last edited by seanwaye on 2017-4-10 18:08[/i] Hi everyone, I have been using TI's TPS63020 buck-boost chip recently and found that when it is loaded with a large load, its power co...
seanwaye Analogue and Mixed Signal

Technical ResourceMore

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 2839  2466  1919  40  2085  58  50  39  1  42 
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