CZF Series, Aluminum - Polymer Capacitors

Results:
8
Manufacturer
Series
Capacitance
Ripple Current @ Low Frequency
ESR (Equivalent Series Resistance)
Ripple Current @ High Frequency
Voltage - Rated
Lead Spacing
Size / Dimension
Operating Temperature
Applications
Height - Seated (Max)
Tolerance
Surface Mount Land Size
Mounting Type
Ratings
Lifetime @ Temp.
Type
Package / Case
Features
Impedance
Results remaining8
Applied Filters:
CZF
Select
ImageProduct DetailPriceAvailabilityECAD ModelFeaturesMounting TypeHeight - Seated (Max)TypeToleranceOperating TemperaturePackage / CaseImpedanceApplicationsRatingsCapacitanceSize / DimensionLead SpacingVoltage - RatedESR (Equivalent Series Resistance)Lifetime @ Temp.Ripple Current @ Low FrequencyRipple Current @ High FrequencySurface Mount Land SizeSeries
35CZF150M8X9
CAP ALUM HYB 150UF 20% 35V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
150 µF
0.315" Dia (8.00mm)
0.138" (3.50mm)
35 V
27mOhm
4000 Hrs @ 125°C
240 mA @ 100 Hz
1.6 A @ 100 kHz
-
CZF
63CZF56M10X9
CAP ALUM HYB 56UF 20% 63V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
56 µF
0.394" Dia (10.00mm)
0.197" (5.00mm)
63 V
30mOhm
4000 Hrs @ 125°C
210 mA @ 100 Hz
1.4 A @ 100 kHz
-
CZF
63CZF33M8X9
CAP ALUM HYB 33UF 20% 63V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
33 µF
0.315" Dia (8.00mm)
0.138" (3.50mm)
63 V
40mOhm
4000 Hrs @ 125°C
110 mA @ 100 Hz
1.1 A @ 100 kHz
-
CZF
50CZF68M8X9
CAP ALUM HYB 68UF 20% 50V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
68 µF
0.315" Dia (8.00mm)
0.138" (3.50mm)
50 V
30mOhm
4000 Hrs @ 125°C
187.5 mA @ 100 Hz
1.25 A @ 100 kHz
-
CZF
35CZF270M10X9
CAP ALUM HYB 270UF 20% 35V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
270 µF
0.394" Dia (10.00mm)
0.197" (5.00mm)
35 V
20mOhm
4000 Hrs @ 125°C
300 mA @ 100 Hz
2 A @ 100 kHz
-
CZF
25CZF330M10X9
CAP ALUM HYB 330UF 20% 25V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
330 µF
0.394" Dia (10.00mm)
0.197" (5.00mm)
25 V
20mOhm
4000 Hrs @ 125°C
300 mA @ 100 Hz
2 A @ 100 kHz
-
CZF
50CZF100M10X9
CAP ALUM HYB 100UF 20% 50V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
100 µF
0.394" Dia (10.00mm)
0.197" (5.00mm)
50 V
28mOhm
4000 Hrs @ 125°C
240 mA @ 100 Hz
1.6 A @ 100 kHz
-
CZF
25CZF220M8X9
CAP ALUM HYB 220UF 20% 25V T/H
Contact us
Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Through Hole
0.413" (10.50mm)
Hybrid
±20%
-55°C ~ 125°C
Radial, Can
-
Automotive
AEC-Q200
220 µF
0.315" Dia (8.00mm)
0.138" (3.50mm)
25 V
27mOhm
4000 Hrs @ 125°C
240 mA @ 100 Hz
1.6 A @ 100 kHz
-
CZF

About  Aluminum - Polymer Capacitors

Aluminum polymer capacitors are a type of polarized capacitor that utilizes an aluminum electrode material with an aluminum oxide dielectric, similar to standard electrolytic capacitors. However, they differ from traditional electrolytic capacitors by employing a conductive polymer material instead of conventional fluid electrolytes. Compared to standard aluminum electrolytic capacitors, polymer capacitors typically demonstrate enhanced electrical performance. This improvement comes at the expense of higher cost and increased sensitivity to the operating environment. Polymer capacitors are known for their ability to offer advantages such as lower equivalent series resistance (ESR), higher ripple current handling capabilities, and longer operational lifespans in certain applications. Despite these performance benefits, the use of a conductive polymer material in these capacitors contributes to their higher manufacturing costs. Additionally, polymer capacitors are more sensitive to factors such as temperature, voltage, and current, requiring careful consideration of operating conditions to ensure optimal performance and reliability. In summary, aluminum polymer capacitors provide improved electrical characteristics compared to standard aluminum electrolytic capacitors, but their higher cost and greater susceptibility to environmental factors necessitate careful evaluation of their suitability for specific applications.