Lenses

Image Part Number Description / PDF Quantity Rfq
G063208000

G063208000

Excelitas Technologies

ACHR. VIS ARB2; D=31.5; F=400; M

1

G063166000

G063166000

Excelitas Technologies

BICONVEXL.; FUSED SILICA; D=31.5

1

G063051000

G063051000

Excelitas Technologies

PLANO-CONVEX LENS; N-BK7; D=31.5

4

G063071000

G063071000

Excelitas Technologies

PLANO-CONC. LENS; N-BK 7; D=22.4

1

G063060000

G063060000

Excelitas Technologies

BICONCAVL.; N-BK 7; D=22.4; F=-4

1

G063104000

G063104000

Excelitas Technologies

PLANO-CONVEX LENS; N-BK7; D=31.5

1

G063339000

G063339000

Excelitas Technologies

PLANO-CONVEX LENS; FUSED SILICA;

1

G063114000

G063114000

Excelitas Technologies

PLANO-CONVEX LENS; FUSED SILICA;

1

G063115000

G063115000

Excelitas Technologies

PLANO-CONVEX LENS; FUSED SILICA;

1

G063142000

G063142000

Excelitas Technologies

ACHR. VIS ARB2; D=22.4; F=60; MO

9

G063204000

G063204000

Excelitas Technologies

ACHR. VIS ARB2; D=31.5; F=160; M

4

G063342000

G063342000

Excelitas Technologies

PLANO-CONVEX LENS; FUSED SILICA;

4

G063025000

G063025000

Excelitas Technologies

BICONVEXL.; N-BK 7; D=22.4; F=60

59

G063352000

G063352000

Excelitas Technologies

PLANO-CONC. LENS; FUSED SILICA;

2

G063045000

G063045000

Excelitas Technologies

PLANO-CONVEX LENS; N-BK7; D=22.4

3

G063028000

G063028000

Excelitas Technologies

BICONVEXL.; N-BK 7; D=22.4; F=15

1

G063319000

G063319000

Excelitas Technologies

BICONVEXL.; FUSED SILICA; D=22.4

1

G063323000

G063323000

Excelitas Technologies

BICONVEXL.; FUSED SILICA; D=22.4

1

G063049000

G063049000

Excelitas Technologies

PLANO-CONVEX LENS; N-BK7; D=22.4

2

G063823000

G063823000

Excelitas Technologies

PLANO-CONVEX LENS; N-BK7; D=25.4

1

Lenses

1. Overview

Optical lenses are precision components designed to manipulate light through refraction, enabling beam shaping, focusing, or imaging. They serve as fundamental elements in optical systems across scientific, industrial, and consumer applications. Modern technologies rely on lenses for applications ranging from high-resolution microscopy to autonomous vehicle LiDAR systems, with advancements in materials and manufacturing driving performance improvements.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Spherical LensesSimple curved surfaces with uniform radiusBasic imaging systems, eyepieces
Aspheric LensesNon-spherical surfaces correcting spherical aberrationHigh-precision cameras, laser diode collimation
Cylindrical LensesSingle-axis curvature for line focusingLaser beam shaping, spectroscopy
Achromatic LensesMulti-element design correcting chromatic aberrationMicroscopy, telescopes, white light systems
Reflective MirrorsMetallic surfaces for broadband reflectionHigh-power laser systems, UV applications
Diffractive OpticsMicro-structured surfaces enabling complex beam profiles3D sensing, medical imaging

3. Structure and Composition

Typical optical lenses consist of: - Substrate Material: Optical glass (e.g., BK7, SF11), plastics (PMMA, polycarbonate), or crystals (sapphire, germanium) - Surface Geometry: Spherical, aspheric, or freeform profiles with nanometer-level precision - Coatings: Anti-reflective (AR) coatings (e.g., MgF ), high-reflectivity dielectric coatings, or protective layers - Mechanical Housing: Metal/aluminum mounts with precision alignment features

4. Key Technical Specifications

ParameterImportance
Focal Length ( 1%)Determines image magnification and field of view
Numerical Aperture (NA)Defines light-gathering ability and resolution
Wavelength RangeSpecifies operational spectral bandwidth
Transmission EfficiencyMeasures optical power throughput
Surface Quality (Scratch-Dig)Affects stray light and damage threshold
Radius of Curvature ToleranceImpacts wavefront accuracy

5. Application Fields

  • Photonics: Laser resonators, fiber optic couplers
  • Medical: Endoscopes, OCT imaging systems
  • Industrial: Machine vision, laser cutting optics
  • Consumer: Smartphone cameras, AR/VR headsets
  • Aerospace: Satellite imaging, hyperspectral sensors

6. Leading Manufacturers and Products

ManufacturerRepresentative Product
Edmund Optics59-875 C Series Fixed Focal Length Lens
ThorlabsAC254-050-A Achromatic Doublet
Carl ZeissPlan-Apochromat 100x/1.46 Oil Immersion Lens
Sch fter+Kirchhoff67-588-IG 1.306 NA Micro-objective

7. Selection Recommendations

Key selection criteria include:

  • Match wavelength range to coating specifications
  • Balance NA requirements with spherical aberration control
  • Consider thermal stability for high-power applications
  • Implement environmental protections (humidity, vibration)

Example: Selecting a telecentric lens (e.g., Edmund 59-875) for industrial metrology ensures minimal perspective error in dimensional measurements.

8. Industry Trends

Current developments include:

  • Hybrid aspheric-diffractive designs for multi-spectral correction
  • Freeform optics enabled by diamond turning manufacturing
  • Smart lenses with integrated MEMS wavefront control
  • Nanostructured anti-reflective coatings (subwavelength gratings)
  • AI-driven lens design optimization algorithms

The global optical lens market is projected to reach $15.2 billion by 2027, driven by demand in 3D sensing and autonomous vehicle technologies.

RFQ BOM Call Skype Email
Top