Allicdata Part #: | NOJP106M004RWJ-ND |
Manufacturer Part#: |
NOJP106M004RWJ |
Price: | $ 0.16 |
Product Category: | Capacitors |
Manufacturer: | AVX Corporation |
Short Description: | CAP NIOB OXIDE 10UF 20% 4V 0805 |
More Detail: | 10µF Niobium Oxide Capacitor 4V 0805 (2012 Metric)... |
DataSheet: | NOJP106M004RWJ Datasheet/PDF |
Quantity: | 1000 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
2500 +: | $ 0.14525 |
Operating Temperature: | -55°C ~ 105°C |
Supplier Device Package: | 0805 (2012 Metric) |
Size / Dimension: | 0.081" L x 0.053" W (2.05mm x 1.35mm) |
Series: | OxiCap® NOJ |
Packaging: | Tape & Reel (TR) |
Lead Free Status / RoHS Status: | -- |
Part Status: | Active |
Moisture Sensitivity Level (MSL): | -- |
Capacitance: | 10µF |
Tolerance: | ±20% |
Voltage - Rated: | 4V |
ESR (Equivalent Series Resistance): | 4.5 Ohms |
Current - Leakage: | 1µA |
Dissipation Factor: | 16% |
Mounting Type: | Surface Mount |
Package / Case: | 0805 (2012 Metric) |
Manufacturer Size Code: | P |
Height - Seated (Max): | 0.059" (1.50mm) |
Features: | -- |
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Niobium Oxide Capacitors, such as NOJP106M004RWJ, are widely used in a variety of applications due to their unique properties and high performance. These capacitors are composed of niobium pentoxide (Nb2O5), which is formed into a film when a voltage is applied. This film acts as the dielectric for the capacitor, giving it the ability to store electrical charge. The capacitors are available in a variety of values ranging from 0.1 microfarads to 104 microfarads, allowing them to be used in a range of applications.
Niobium Oxide Capacitors, such as NOJP106M004RWJ, have a variety of different uses within electrical engineering. These capacitors are most commonly used in circuits where high-frequency operation is required, as they are able to provide excellent performance at high frequencies. Additionally they are used in bass-boosting circuits, as they can provide greater power delivery than standard capacitors. They are also used in power-supply bypass circuits, as they can provide better noise filtering than standard capacitors. Other applications of these capacitors include circuit protection, matching networks, and low-noise bias networks.
The structure of a Niobium Oxide Capacitor, such as NOJP106M004RWJ, is simple yet effective. The device consists of two metal plates, usually referred to as the “positive” and “negative” plates, which are separated by the dielectric material. The dielectric material can either be a niobium pentoxide film or a ceramic material. When a voltage is applied to the device, electrons are attracted to the negative plate and repelled from the positive plate, which creates a charge within the capacitor. This charge is then held within the device until a threshold voltage is reached and the charge is released. The amount of charge stored within the device is determined by the capacitance rating of the device.
The working principle of the Niobium Oxide Capacitor is similar to that of a standard electrolytic capacitor. This is because the capacitor operates in the same basic way, although the Nb2O5 film does provide more reliable performance. The amount of charge stored within these capacitors is proportional to the applied voltage, and this charge will be held until it reaches the threshold voltage. Once this is reached, the charge is released and the device is reset. This cycle can occur at very high frequencies, making these devices ideal for use in high-frequency applications.
In conclusion, the NOJP106M004RWJ is a type of Niobium Oxide Capacitor. It is composed of an Nb2O5 film that acts as the dielectric material and has two metal plates. These capacitors exhibit excellent performance at high frequencies and can be used in a variety of applications such as bass-boosting circuits, power-supply bypass circuits, circuit protection, matching networks, and low-noise bias networks. The working principle of these capacitors is very similar to that of a standard electrolytic capacitor, as the amount of charge stored is proportional to the applied voltage and will be released when the threshold voltage is reached.
The specific data is subject to PDF, and the above content is for reference
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