Allicdata Part #: | VLP1-D-4-ND |
Manufacturer Part#: |
VLP1-D-4 |
Price: | $ 0.20 |
Product Category: | Optoelectronics |
Manufacturer: | Essentra Components |
Short Description: | LED LIGHT PIPE CLR VERT 21.8MM |
More Detail: | Light Pipe Single Clear Rigid Round with Domed Top |
DataSheet: | VLP1-D-4 Datasheet/PDF |
Quantity: | 1000 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
1000 +: | $ 0.17987 |
Series: | VLP |
Part Status: | Active |
Lead Free Status / RoHS Status: | -- |
Color: | Clear |
Moisture Sensitivity Level (MSL): | -- |
Configuration: | Single |
Type: | Rigid |
Lens Style: | Round with Domed Top |
Lens Size: | -- |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
Optics - Light Pipes covers a few different areas including fiber optics, channel planar waveguides, and diffractive optical elements. One such device is the VLP1-D-4, which has a variety of applications across sectors, from entertainment to analytical instruments. This article will cover the application field and working principle of the VLP1-D-4 in detail.The VLP1-D-4 is a High-Speed Optical Splitter/Combiner. It is a monolithic, multifunctional device consisting of two independent arms, each with four integrated optical channels. The arms can be used for splitting or merging light from/to one or four output fibers. The device also has a variety of filtering functions, such as notch-filter, optical gain, and multiple spectral narrowing applications.The VLP1-D-4 is particularly useful in applications requiring high-repetition rate light splitting/merging. Such applications include lasers, white/RGB LEDs, high-speed fiber optic systems, and optical sensing or imaging systems. It is also often used for optical communication systems, such as metropolitan networks, in-house fiber networks, and local area networks.The high-speed performance of the VLP1-D-4 also lends itself to more specialised applications such as fluorescence and confocal microscopy, seismology, pulse shaping, and beam manipulation. The device\'s ability to split and combine multiple channels of light enables the user to create customised optical systems with fewer components and improved control over the wavelength and intensity the output light.The VLP1-D-4 works by collecting light from a single input fibre and redirecting it into separate output fibers, thus enabling optical signal split or merge. The device also contains a number of filters to reduce unnecessary noise and reject background noise from other channels.The VLP1-D-4 utilizes a specialized type of optical element known as a distributed Bragg Reflector (DBR). DBRs are made from multiple layers of dielectric material, resulting in a structure with a highly reflective surface. The structure also creates a waveguide effect, allowing the light to be channeled through the device.By adjusting the device’s parameters (input length, output length, and number of output channels), the user can create different output powers and spectral responses. The device can be tuned to a specific wavelength, enabling it to work with light sources of different wavelengths. This makes the VLP1-D-4 highly versatile, and suitable for use with multiple types of optical systems.Even with such a comprehensive range of features, the VLP1-D-4 has relatively low power consumption, making it well-suited for high power applications such as long-distance transmission. It is also highly reliable, making it suitable for use in critical applications such as medical imaging or aerospace applications.In summary, the VLP1-D-4 is a highly versatile device with a range of features and applications. It has high speed performance, low power consumption, and is highly reliable, making it suitable for a variety of optical systems. Its ability to split and combine channels of light and its ability to be tuned to specific wavelengths make it well-suited for applications such as optical communication systems, fluorescence microscopy, and pulse shaping.
The specific data is subject to PDF, and the above content is for reference
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