Lenses

Results:
1,872
Manufacturer
Series
Optic Edge Thickness
Viewing Angle
For Use With/Related Manufacturer
Optic Center Thickness
Lens Size
Focal Length
Optic Diameter
Mounting Type
Lens Style
Type
Number of LEDs
Clear Aperture
Color
Wavelength
Optical Pattern
Optic Material
Material
Lens Transparency
Results remaining1,872
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ImageProduct DetailPriceAvailabilityECAD ModelWavelengthOptic MaterialOptic DiameterClear ApertureMounting TypeSeriesTypeFocal LengthOptic Center ThicknessOptic Edge Thickness
G063049000
PLANO-CONVEX LENS; N-BK7; D=22.4
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Convex Singlet
200mm
2.7mm
2.1mm
G052104000
PLANO-CONVEX LENS; N-BK7; D=6; F
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
6mm
5mm
16mm
LINOS Singlets
Plano-Convex Singlet
6mm
3mm
0.68mm
G063062000
BICONCAVL.; N-BK 7; D=22.4; F=-1
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-100mm
1.5mm
2.7mm
G063060000
BICONCAVL.; N-BK 7; D=22.4; F=-4
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-40mm
1.5mm
4.5mm
G063058000
BICONCAVL.; N-BK 7; D=22.4; F=-2
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-20mm
1.5mm
7.2mm
G063071000
PLANO-CONC. LENS; N-BK 7; D=22.4
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Concave Singlet
-50mm
1.5mm
4mm
G063072000
PLANO-CONC. LENS; N-BK 7; D=22.4
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Concave Singlet
-100mm
1.5mm
2.7mm
G063028000
BICONVEXL.; N-BK 7; D=22.4; F=15
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconvex Singlet
150mm
3mm
2.2mm
G063024000
BICONVEXL.; N-BK 7; D=22.4; F=50
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconvex Singlet
50mm
4.5mm
2.1mm
G063021000
BICONVEXL.; N-BK 7; D=22.4; F=25
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Quantity
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PCB Symbol, Footprint & 3D Model
350nm ~ 2000nm
N-BK7
22.4mm
21.4mm
25mm
LINOS Singlets
Biconvex Singlet
25mm
7mm
1.6mm
G313330525
BICONCAVE LENS; FUSED SILICA; D=
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Quantity
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PCB Symbol, Footprint & 3D Model
725nm ~ 1050nm
Fused Silica
22.4mm
-
Unmounted
LINOS Singlets
Biconcave Singlet
-20mm
1.5mm
8.1mm
G317708525
ASPH. CONDENSER LENS; D=50; F=40
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Quantity
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PCB Symbol, Footprint & 3D Model
725nm ~ 1050nm
Crown Glass
50mm
40mm
Unmounted
LINOS Singlets
Aspherical Condensor Lens
40mm
19.4mm
2.3mm
G063342525
PLANO-CONVEX LENS; FUSED SILICA;
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Quantity
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PCB Symbol, Footprint & 3D Model
725nm ~ 1050nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Convex Singlet
100mm
2.8mm
1.5mm
G063050525
PLANO-CONVEX LENS; FUSED SILICA;
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Quantity
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PCB Symbol, Footprint & 3D Model
725nm ~ 1050nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Convex Singlet
40mm
5mm
1.5mm
G063341525
PLANO-CONVEX LENS; FUSED SILICA;
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Quantity
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PCB Symbol, Footprint & 3D Model
725nm ~ 1050nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Plano-Convex Singlet
80mm
3.1mm
1.5mm
G322332322
ACHR. VIS ARB2; D=18; F=200
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Quantity
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PCB Symbol, Footprint & 3D Model
450nm ~ 700nm
-
18mm
-
Unmounted
LINOS Achromats
Achromatic Lens
200mm
6.5mm
6.1mm
G063345329
BICONCAVE LENS; FUSED SILICA; D=
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PCB Symbol, Footprint & 3D Model
1064nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-30mm
1.5mm
5.7mm
G063346329
BICONCAVE LENS; FUSED SILICA; D=
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Quantity
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PCB Symbol, Footprint & 3D Model
1064nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-40mm
1.5mm
4.7mm
G063347329
BICONCAVE LENS; FUSED SILICA; D=
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Quantity
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PCB Symbol, Footprint & 3D Model
1064nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-50mm
1.5mm
4.1mm
G063347322
BICONCAVE LENS; FUSED SILICA; D=
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Quantity
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PCB Symbol, Footprint & 3D Model
450nm ~ 700nm
Fused Silica
22.4mm
21.4mm
25mm
LINOS Singlets
Biconcave Singlet
-50mm
1.5mm
4.1mm

Lenses

Optical lenses are critical devices used to manipulate and focus light in various laboratory and industrial settings. These lenses come in a wide range of types and configurations, each tailored to specific applications and requirements. The primary function of optical lenses is to converge or diverge light rays, enabling precise control over the direction and intensity of light. These lenses can be categorized into various types, such as plano-convex, double-convex, plano-concave, double-concave, and meniscus lenses, each with its unique shape and optical characteristics. When selecting optical lenses, several parameters need to be considered. Firstly, the type of lens should be chosen based on the desired light manipulation, whether it is focusing, collimating, or dispersing light. Focal length determines the distance between the lens and the focal point, influencing the magnification and focusing capabilities of the lens. Wavelength compatibility is another critical factor, ensuring that the lens operates optimally within the desired wavelength range. Optic diameter indicates the size of the lens, determining the maximum beam size that can be accommodated by the lens without significant light loss or distortion. Clear aperture refers to the central portion of the lens that allows light to pass through unobstructed. Optic center thickness and edge thickness determine the overall thickness of the lens, which can impact factors such as weight, ease of handling, and optical aberrations. Optic material plays a crucial role in lens selection, as different materials have varying refractive indices and dispersion properties. Common materials include glass, plastic, and specialized materials like fluorite or calcium fluoride, each with its advantages and limitations. Other factors to consider may include lens coatings, environmental robustness, and aberration correction capabilities. Lens coatings can enhance transmission efficiency, reduce reflections, and protect the lens from environmental factors. Environmental robustness ensures that the lens can withstand variations in temperature, humidity, and other conditions. Aberration correction capabilities indicate the lens's ability to minimize optical distortions and improve image quality. In summary, optical lenses are indispensable devices used to focus and manipulate light in laboratory and industrial settings. These lenses can be selected based on parameters such as lens type, focal length, wavelength compatibility, optic diameter, clear aperture, optic center thickness, optic edge thickness, optic material, lens coatings, environmental robustness, and aberration correction capabilities. Their wide range of applications includes microscopy, imaging systems, laser systems, and more.