EEWORLDEEWORLDEEWORLD

Part Number

Search

111U471G201GW

Description
Ceramic Capacitor, Multilayer, Ceramic, 200V, 2% +Tol, 2% -Tol, NP0, -/+30ppm/Cel TC, 0.00047uF, 1111,
CategoryPassive components    capacitor   
File Size134KB,3 Pages
ManufacturerCapax Technologies Inc
Websitehttp://www.capaxtechnologies.com/
Environmental Compliance
Download Datasheet Parametric View All

111U471G201GW Overview

Ceramic Capacitor, Multilayer, Ceramic, 200V, 2% +Tol, 2% -Tol, NP0, -/+30ppm/Cel TC, 0.00047uF, 1111,

111U471G201GW Parametric

Parameter NameAttribute value
Is it Rohs certified?conform to
Objectid890795322
package instruction, 1111
Reach Compliance Codecompliant
Country Of OriginUSA
ECCN codeEAR99
YTEOL7.3
capacitance0.00047 µF
Capacitor typeCERAMIC CAPACITOR
dielectric materialsCERAMIC
high2.54 mm
JESD-609 codee4
length2.7 mm
multi-layerYes
negative tolerance2%
Number of terminals2
Maximum operating temperature125 °C
Minimum operating temperature-55 °C
Package formSMT
method of packingWaffle Pack
positive tolerance2%
Rated (DC) voltage (URdc)200 V
series111(200V)
size code1111
Temperature characteristic codeNP0
Temperature Coefficient30ppm/Cel ppm/°C
Terminal surfaceGold (Au) - with Nickel (Ni) barrier
width2.7 mm
Q-Max / ULTRA Q-Max
Technologies, Inc
RF/ Microwave Porcelain Multi-Layer Capacitors (MLC)
The Q-Max/Ultra Q-Max series of porcelain and ceramic dielectric capacitors are ideally suited for
RF/Microwave frequency application from 10MHz to 4.2 GHz. The combination of high density, high purity
dielectric material impervious to moisture, heavy pure palladium internal electrodes and strict statistical
process controls allows Q-Max/Ultra Q-Max MLCs to meet or exceed applicable performance characteristics
of MIL-PRF-55681/4.
These capacitors are suitable solutions for applications
that require:
Extremely High Quality Factors
Very Low Equivalent Series Resistance
Very High Series Resonance
High Current Carrying Capabilities
Greatest Stability Under Changing Factors
M
ECHANICAL
D
IMENSIONS
in
Case Size
0402
0603
055
111
Length (L)
.040±.010
(1.02±.250)
.063±.006
(1.60±.152)
.055±.015
(1.40±.381)
.110±.020
(2.79±.508)
Width (W)
.020±.005
(.510±.120)
.032±.006
(.813±.152)
.055±.015
(1.40±.381)
.110±.020
(2.79±.508)
Inches (mm)
Thickness (T)
.020±.006
(.510±.152)
Max: .035
Max: (.889)
.035±.010
(.889±.25)
.100±.020
(2.54±.508)
Bandwidth (bw)
.010±.005
(.250±.120)
.014±.006
(.357±.152)
.015±.005
(.381±.120)
.015±.010
(.381±.254)
O
RDERING
I
NFORMATION
Case Size
Dielectric
Capacitance
111
Example:
0402
0603
055
111
Tolerance
J
A ±0.05pF
B ±0.10pF
C ±0.25pF
F ±1%
G ±2%
J ±5%
K ±10%
M ±20%
Voltage
201
Termination
S
Packaging
T
T Tape
and Reel
W Waffle
Pack
Marking
M
(Optional)
M = Marking
Hi-Reli Testing
Q
Q High Q
(Porcelain
Dielectric)
U Hi-Q
(Porcelain
NPO
Dielectric)
201
First 2 digits are
Significant; Third
digit indicates
number of Zeros
Examples:
201 = 200pF
2R2 = 2.2pF
- A
(Optional
)
A = Group A
B = Group B
C = Group C
Tested and
Screened
First 2 digits are
P Pd/Ag Plated
Significant; Third
(
RoHS Compliant)
digit indicates
S Solder Plated
number of Zeros
Over Nickel
SN Tin over
Examples:
Nickel Plated
(RoHS Compliant)
201 = 200V
G Gold over
151 = 150V
Nickel Plated
202 = 2000V
(RoHS Compliant)
Performance
Resonant Frequency - GHz
.
Typical Resonant Frequency vs. Capacitance
80
1000
60
100
10
40
1.0
20
0.1
Typical Q and ESR vs. Capacitance
10000
Q or ESR - ohms
1000
100
10
1.0
0.1
0.01
1
10
100
Capacitance (pF)
1000
055 Parallel
111 Parallel
055 Series
111 Series
0.1
1
10
100
Capacitance (pF)
1000
Q
ESR
0
C
APAX
T
ECHNOLOGIES
, I
NC
º
24842 A
VE
T
IBBITTS
º
V
ALENCIA
, C
A
º
91355
º
661.257.7666
º
F
AX
: 661.257.4819
WWW
.C
APAX
T
ECHNOLOGIES
.C
OM
º
P
AGE
1
º
DeviceEmulator error question
The code I wrote compiled successfully. But when I run it in DeviceEmulator, an error message appears: Error: the emulation layer does not support the functionality that is being accessed. After check...
hjd85 Embedded System
ZedBoard Learning Notes (VII) Interlude: How to make the code run automatically at startup
[table=98%] [tr][td][align=left]Before starting the QT graphical user interface development, we need to talk about how to make the code run automatically when the ZedBoard is powered on. For Linux sys...
CMika FPGA/CPLD
Detailed explanation of the .ICF configuration file for the LPC1768 IAR ILINK connector
[p=30, 2, left]This article introduces IAR's icf configuration file. In fact, this is an in-depth knowledge expansion. When beginners use IAR to simply develop a piece of film, few people care about t...
rain_noise Integrated technical exchanges
Please help me, experts. . Regarding the floating point comparison problem under PC104. . .
The problem is this: We use Digital Logic's 486pc104 (maybe MSM, I can't remember, but it is the most popular one from Digital Logic). In the vxworks system, we use the following statement: fun (float...
shjdzgy Embedded System
Selection Manual.pdf
Selection Manual.pdf...
Rick37 Power technology
SensorTile.box emulates STEVAL-MKI109V3
If you have a SensorTile.box in your hand, now you can pretend it is the two boards of STEVAL-MKI109V3+STEVAL-MKI186V1 I used SensorTile.box to compile a firmware that can be used on Unico, currently ...
littleshrimp ST Sensors & Low Power Wireless Technology Forum

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 1517  1106  2759  1325  2385  31  23  56  27  49 
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