CN12601_LENINA-M Allicdata Electronics
Allicdata Part #:

711-1237-ND

Manufacturer Part#:

CN12601_LENINA-M

Price: $ 8.65
Product Category:

Optoelectronics

Manufacturer: Ledil
Short Description: REFLECTOR BRGLUX BXRA ES MED
More Detail: Reflector Bridgelux BXRA ES Rectangle 29° Medium R...
DataSheet: CN12601_LENINA-M datasheetCN12601_LENINA-M Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
1 +: $ 7.86240
10 +: $ 7.11963
100 +: $ 4.74648
250 +: $ 4.44982
500 +: $ 4.07900
1000 +: $ 3.85651
2500 +: $ 3.70818
5000 +: $ 3.63402
10000 +: $ 3.55985
Stock 1000Can Ship Immediately
$ 8.65
Specifications
Series: Lenina
Part Status: Discontinued at Digi-Key
Lead Free Status / RoHS Status: --
Style/Size: Round, 74mm
Moisture Sensitivity Level (MSL): --
Optical Pattern: Medium
For Use With/Related Manufacturer: Bridgelux
Viewing Angle: 29°
Mounting Type: Screw Mount
Description

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 - Reflectors has long been studied and used in the practical applications of physics and material science. Among the many reflectors available, the CN12601_LENINA-M stands out by its multiple applications and excellent working principles. In this paper, we shall look in detail at this reflector and its uses in the field of optics, as well as its working principle.

CN12601_LENINA-M is a reflective material created by Huazhong University of Science and Technology (HUST) in China. It is made of two layers of polystyrene or other plastic-like material, one layer treated with metallic nanoparticles, the other layer with electrodeposited copper metal, which form a composite layer. The reflection capability of this material is strong enough to be used as a secondary reflector in solar-reflector systems, as well as in the development of advanced reflecting materials.

The main applications of CN12601_LENINA-M reflector lies in solar energy and lighting systems. This reflective material is perfect for applications that require both strong and uniform reflection, such as solar reflector systems. The nature of the material itself allows it to absorb only a minimal fraction of the incident energy, thus avoiding excessive heating. This makes it ideal for use in places where temperatures are already high, such as in solar power plants, or in any system that relies on the generation of heat from sunlight.

In addition to its use in solar reflector systems, CN12601_LENINA-M can also be used in lighting systems, and in the development of light-emitting materials. The properties of the material allow it to be used in a variety of ways, from the creation of mirrors and lenses to the development of optical fibers. Its ability to reflect light eliminates the need for complicated mirror arrangements, thus making it an excellent choice for the production of sophisticated lighting systems and lenses.

The working principle of CN12601_LENINA-M is based on the physical laws of reflection. When light is incident on the material, it is reflected back in the same direction, while some parts of the incident light undergoes complete or partial absorption. This is the basic principle that lies at the heart of all reflective materials.

The most important feature of CN12601_LENINA-M is its ability to absorb only a small fraction of the incident energy. This results in a higher reflection efficiency, which makes the material perfect for use in high-temperature cooling systems. Reflective materials typically absorb about 10-20% of the incident light, whereas CN12601_LENINA-M is able to reflect around 40%.

Overall, CN12601_LENINA-M is a superior reflective material for use in optics, solar energy and lighting systems. It is capable of reflecting a close to perfect reflection of incident light and due to its excellent working principle, is highly efficient in absorbing only a fraction of the incident energy. It is an excellent choice for use in places that require both light and thermal regulation.

The specific data is subject to PDF, and the above content is for reference

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