Polarizers

Results:
48
Manufacturer
Series
Wavelength
Size / Dimension
Type
Clear Aperture
Optic Diameter
Mounting Type
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ImageProduct DetailPriceAvailabilityECAD ModelSize / DimensionSeriesMounting TypeWavelengthTypeOptic DiameterClear Aperture
G362501427
RETARDATION PLATE S 532NM; D=10;
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Quantity
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PCB Symbol, Footprint & 3D Model
-
LINOS Microbench
25mm
532nm
Mounted Retardation Plate
10mm
9mm
G362503227
RETARDATION PLATE S 532NM; D=20;
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Quantity
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PCB Symbol, Footprint & 3D Model
-
LINOS Microbench
25mm
532nm
Mounted Retardation Plate
20mm
19mm
G362503427
RETARDATION PLATE S 532NM; D=20;
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Quantity
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PCB Symbol, Footprint & 3D Model
-
LINOS Microbench
25mm
532nm
Mounted Retardation Plate
20mm
19mm
G362021291
ACHR. RETARDER 400-700NM; L/2; M
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Quantity
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PCB Symbol, Footprint & 3D Model
-
LINOS Microbench
25mm
400nm ~ 700nm
Mounted Retardation Plate
-
12.5mm
G362021491
ACHR. RETARDER 400-700NM; L/4; M
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Quantity
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PCB Symbol, Footprint & 3D Model
-
LINOS Microbench
25mm
400nm ~ 700nm
Mounted Retardation Plate
-
12.5mm
G335711000
THIN FILM POLARIZER 450-700NM; L
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Quantity
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PCB Symbol, Footprint & 3D Model
0.20" L x 0.20" W x 0.20" H (5.0mm x 5.0mm x 5.0mm)
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-
450nm ~ 700nm
Polarizer
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-
G335712000
THIN FILM POLARIZER 450-700NM; L
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Quantity
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PCB Symbol, Footprint & 3D Model
0.28" L x 0.28" W x 0.28" H (7.0mm x 7.0mm x 7.0mm)
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-
450nm ~ 700nm
Polarizer
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-
G335746000
THIN FILM POLARIZER 450-1050NM;
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Quantity
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PCB Symbol, Footprint & 3D Model
0.63" L x 0.63" W x 0.63" H (16.0mm x 16.0mm x 16.0mm)
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-
450nm ~ 1050nm
Polarizer
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-

Polarizers

Optical polarizers are critical components used to transform unpolarized light into polarized light, enabling precise control over the light's polarization state. These polarizers come in various types and configurations, each optimized for specific applications and wavelength ranges. The primary function of optical polarizers is to transmit only that predefined polarization while blocking all others, enabling the elimination of unwanted polarization states. Common types of optical polarizers include linear polarizers, circular polarizers, and wire-grid polarizers, each with its unique characteristics and advantages. When selecting an optical polarizer, several parameters need to be considered. Wavelength compatibility ensures that the polarizer operates optimally within the desired wavelength range. Optic diameter determines the size of the polarizer, influencing the amount of light transmitted and the maximum beam diameter that can be accommodated by the polarizer without significant light loss or distortion. Polarization efficiency refers to the ability of the polarizer to eliminate unwanted polarization states, determining the quality of the polarized light output. Other factors that impact polarization efficiency include the angle of incidence, beam size, and the polarization state of the incident light. Other factors to consider may include environmental robustness, temperature stability, and surface quality. Environmental robustness ensures that the polarizer can withstand variations in temperature, humidity, and other conditions. Temperature stability measures the polarizer's ability to maintain its polarization properties under varying temperature conditions. Surface quality measures how smooth and flat the polarizer's surface is, impacting the quality of the polarized light output. In summary, optical polarizers are indispensable devices used to transform unpolarized light into polarized light for various applications. They can be selected based on parameters such as polarizer type, wavelength compatibility, optic diameter, polarization efficiency, environmental robustness, temperature stability, and surface quality. Their wide range of applications includes microscopy, imaging systems, and more.