Optics - Lenses

Image Part Number Description / PDF Quantity Rfq
2040131200

2040131200

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8060431500

8060431500

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0370117200

0370117200

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0370135300

0370135300

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0261192203

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0850841203

0850841203

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1357871

1357871

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0701133200

0701133200

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9907002001

9907002001

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LED ACCY MOUNTING TERMINAL

0

0800931300

0800931300

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LENS RED PANEL MOUNT THREADED

0

0812131300

0812131300

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LENS RED PANEL MOUNT THREADED

0

1353232

1353232

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LENS GREEN PANEL MOUNT THREADED

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0080131200

0080131200

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LENS RED PANEL MOUNT THREADED

0

0510513300

0510513300

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PMI CAP YLW TORPEDO BACK FROSTED

0

0190533400

0190533400

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LENS YELLOW PANEL MOUNT THREADED

0

0810132100

0810132100

Dialight

LENS GREEN PANEL MOUNT THREADED

0

0910932

0910932

Dialight

CAP MINI PANEL INDICATOR GREEN

0

0410532300

0410532300

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CAP LARGE PANEL INDICATOR GREEN

0

0510511300

0510511300

Dialight

PMI CAP RED TORPEDO BACK FROSTED

0

021571029804

021571029804

Dialight

LIGHT SHIELD PANEL IND

0

Optics - Lenses

1. Overview

Optical lenses are critical components in optoelectronic systems, designed to focus, collimate, or shape light waves through refraction. These precision-engineered components enable control over light propagation in wavelength ranges spanning UV to IR spectra. Modern applications span imaging, telecommunications, industrial sensing, and scientific instrumentation, with recent advancements enabling miniaturization and multi-spectral capabilities.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Spherical LensesSimple curvature surfaces, cost-effective mass productionBasic imaging systems, consumer electronics
Aspherical LensesNon-spherical surfaces correcting spherical aberrationHigh-end cameras, VR headsets
Cylindrical LensesOne curved surface for line generation or astigmatism correctionLaser beam shaping, barcode scanners
Diffractive LensesMicro-structured surfaces enabling thin profile designsAR/MR headsets, LiDAR systems
Gradient-Index (GRIN) LensesRefractive index variation within material volumeEndoscopic imaging, fiber coupling

3. Structure and Composition

Typical lens assemblies consist of: - Optical substrate (glass/crystal/polymers) with precision-surfaced curvatures - Anti-reflective coatings (single/multi-layer dielectrics) - Mechanical housing for alignment stability - Optional spectral filters or diffractive elements Advanced designs integrate liquid crystal layers for tunable focus or MEMS-based adaptive shaping.

4. Key Technical Specifications

ParameterDescriptionImportance
Effective Focal Length (EFL)Distance between principal plane and focal pointDetermines field of view and magnification
Clear ApertureUsable light-transmitting diameterDefines throughput and resolution potential
Wavefront ErrorDeviation from ideal wave propagation ( RMS)Metric for optical quality and aberration control
Transmission RangeSpectral bandwidth with >80% throughputMatches light source characteristics
Thermal Stabilitydn/dT coefficient and CTE valuesEnsures performance under temperature variation

5. Application Fields

Key industries include: - Semiconductor manufacturing (DUV lithography optics) - Medical imaging (endoscopic GRIN lenses) - Autonomous vehicles (LiDAR beam steering systems) - Telecommunications (fiber optic collimators) - Scientific research (extreme UV focusing mirrors)

6. Leading Manufacturers and Products

ManufacturerProduct LineTechnical Highlights
Edmund Optics59-871 C Series Fixed Focal Length Lens25mm focal length, C-mount, 0.03 wavefront accuracy
ThorlabsAC254-050-AAchromatic doublet, 50mm EFL, AR coating 400-700nm
CanonHybrid Aspherical LensUsed in EOS R5 camera, 0.01 surface precision
Suess Precision OpticsCustom Diffractive OpticsEfficiency >95% at 1550nm wavelength

7. Selection Guidelines

Key considerations: - Match spectral transmission to light source (e.g., UV fused silica for 200-350nm) - Balance EFL with sensor size for desired FOV - Environmental factors: operating temperature (-40 C to +85 C typical) - Mounting compatibility (CCS-B, M12, or custom interfaces) - Cost vs. performance trade-offs (e.g., aspheric vs. spherical)

8. Industry Trends

Current developments focus on: - Metasurface-based flat optics for AR applications - Multi-material hybrid lenses combining glass and polymers - AI-optimized lens designs reducing Zemax simulation cycles - Wafer-level manufacturing enabling CMOS camera lens arrays - SWIR imaging lenses leveraging indium gallium arsenide (InGaAs) materials

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