WBSC Series, Silicon Capacitors

Results:
8
Manufacturer
Series
Capacitance
Size / Dimension
Package / Case
Height
Features
Voltage - Breakdown
ESL (Equivalent Series Inductance)
Tolerance
ESR (Equivalent Series Resistance)
Operating Temperature
Applications
Results remaining8
Applied Filters:
WBSC
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ImageProduct DetailPriceAvailabilityECAD ModelToleranceOperating TemperatureCapacitanceESR (Equivalent Series Resistance)SeriesVoltage - BreakdownESL (Equivalent Series Inductance)ApplicationsFeaturesPackage / CaseHeightSize / Dimension
935142521410-T3T
CAP SILICON 1000PF 15% 150V 0202
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Quantity
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PCB Symbol, Footprint & 3D Model
±15%
-55°C ~ 150°C
1000 pF
50 mOhms
WBSC
150 V
50pH
High Stability, Vertical Silicon Cap, Wirebond
High Reliability, Low Profile
0202 (0505 Metric)
0.011" (0.27mm)
0.020" L x 0.020" W (0.50mm x 0.50mm)
935142831510-T3T
CAP SILICON 10000PF 15% 30V 0202
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Quantity
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PCB Symbol, Footprint & 3D Model
±15%
-55°C ~ 150°C
10000 pF
50 mOhms
WBSC
30 V
50pH
High Stability, Vertical Silicon Cap, Wirebond
High Reliability, Low Profile
0202 (0505 Metric)
0.011" (0.27mm)
0.020" L x 0.020" W (0.50mm x 0.50mm)
935142521310-T3T
CAP SILICON 100PF 15% 150V 0202
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Quantity
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PCB Symbol, Footprint & 3D Model
±15%
-55°C ~ 150°C
100 pF
50 mOhms
WBSC
150 V
50pH
High Stability, Vertical Silicon Cap, Wirebond
High Reliability, Low Profile
0202 (0505 Metric)
0.011" (0.27mm)
0.020" L x 0.020" W (0.50mm x 0.50mm)
935142837522-T3T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-55°C ~ 150°C
0.022 µF
-
WBSC
30 V
-
High Stability, Vertical Silicon Cap, Wirebond
Low Profile
0402 (1005 Metric)
0.011" (0.27mm)
0.039" L x 0.020" W (1.00mm x 0.50mm)
935242520427-T3T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-55°C ~ 150°C
2700 pF
-
WBSC
150 V
-
High Stability, Vertical Silicon Cap, Wirebond
-
Nonstandard Chip
0.010" (0.25mm)
0.020" L x 0.079" W (0.50mm x 2.00mm)
935242521437-T3T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-55°C ~ 150°C
3700 pF
-
WBSC
150 V
-
High Stability, Vertical Silicon Cap, Wirebond
Low Profile
Nonstandard Chip
0.004" (0.10mm)
0.020" L x 0.049" W (0.50mm x 1.25mm)
935242522447-T3T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-55°C ~ 150°C
4700 pF
-
WBSC
150 V
-
High Stability, Vertical Silicon Cap, Wirebond
-
Nonstandard Chip
0.004" (0.10mm)
0.020" L x 0.064" W (0.50mm x 1.63mm)
935142050510-T3T
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-55°C ~ 150°C
10000 pF
-
WBSC
100 V
-
High Stability, Vertical Silicon Cap, Wirebond
Low Profile
0303 (0808 Metric)
0.010" (0.25mm)
0.031" L x 0.031" W (0.80mm x 0.80mm)

About  Silicon Capacitors

Silicon and thin-film capacitors are specialized devices that are manufactured using tools, methods, and materials commonly associated with semiconductor device production. This enables the production of capacitors with near-ideal characteristics and exceptional parameter stability. However, these capacitors have a limited range of available values and tend to be more expensive compared to ceramic-based capacitors, which are their primary competitors. The manufacturing process of silicon and thin-film capacitors allows for extreme precision and control over the production parameters. This results in capacitors that exhibit excellent stability in terms of capacitance, voltage ratings, and other electrical properties. They are designed to maintain their specified values over time and under varying conditions, making them ideal for applications that require precise and reliable performance. Despite their advantages, silicon and thin-film capacitors have a relatively narrow range of available capacitance values compared to ceramic-based capacitors. This limitation may restrict their use in certain applications that require a broader range of capacitance options. Furthermore, the cost of manufacturing silicon and thin-film capacitors is generally higher due to the specialized processes and materials involved. As a result, these capacitors are often considered more expensive compared to ceramic-based alternatives. In summary, silicon and thin-film capacitors are produced using semiconductor manufacturing techniques, allowing for the creation of capacitors with near-ideal characteristics and excellent parameter stability. While they have a limited range of capacitance values, they are well-suited for applications that demand precise and reliable performance. However, their higher cost compared to ceramic-based capacitors is an important consideration when selecting the appropriate capacitor for a given application.