High-extinction crystal polarizers for laser and precision optics
| Type | Glan-Thompson / Glan-Taylor / Glan-Laser |
|---|---|
| Material | Calcite / α-BBO |
| Extinction Ratio | > 10⁵ (Glan-Laser) |
| Transmission | > 95% (pass axis) |
| Aperture | 3-20 mm |
| Damage Threshold | High (air-spaced designs) |
| Wavelength | VIS / NIR (material dependent) |
| AR Coatings | Available |
Glan-Type Polarizers provide precise polarization control for optical systems. High-extinction crystal polarizers for laser and precision optics.
PhotonEdge offers standard and custom waveplates and polarizers in quartz, calcite, MgF₂, and α-BBO materials for visible, UV, and NIR applications.
Select the optimal substrate material based on your wavelength, environment, and budget requirements.
| Material | Transmission | Key Advantage | Considerations |
|---|---|---|---|
| Quartz | VIS / NIR | Standard waveplate material, good durability | Wavelength-sensitive retardance |
| MgF₂ | UV / VIS | UV-compatible waveplate material | Lower damage threshold than quartz |
| Calcite | VIS / NIR | High birefringence for polarizers | Limited aperture size |
Not sure which material to choose?
Ask AI Optical EngineerUncoated polarizing elements. Optional AR available.
Typical use: General polarization control
Broadband AR for 400-700nm. R < 0.5% per surface.
Typical use: Visible polarization applications
Custom AR for specific wavelength bands.
Typical use: Laser or specialized applications
To select the right coating, please provide: (1) Operating wavelength, (2) Angle of incidence, (3) Required transmission or reflectivity, (4) Laser power density (if applicable), (5) Operating environment.
Key factors to evaluate when specifying this optical component for your system.
Zero-order: ±λ/200; Multiple-order: ±λ/50. Specify based on system requirements.
Multiple-order waveplates are highly wavelength-sensitive. Zero-order and achromatic designs offer better broadband performance.
Retardance shifts with temperature. Zero-order and achromatic designs are more stable.
For polarizers, higher extinction ratio = better polarization purity. Glan-Laser: > 10⁵.
Polarization control and management in laser cavities and beam paths.
Polarization-sensitive measurements and ellipsometry.
Polarization-maintaining components for fiber optic systems.
Precision polarization experiments and optical metrology.
PhotonEdge supports optical component sourcing, engineering review, and qualified manufacturing through our optical manufacturing network. We coordinate production, coating, and inspection to deliver components that meet your specifications.
Diameter, thickness, focal length verified per specification
Scratch-dig inspection under calibrated illumination
Spectrophotometric measurement of transmission/reflectance
Inspection documentation available according to project requirements. Certificates of Conformance, material test reports, and coating curves can be provided.
The following documentation is available upon request for qualified engineering projects:
CAD & dimensional specs per your requirements
Material properties, transmission curves & certificates
Spectrophotometric measurement data
Surface quality, flatness, centration & dimensional data
CoC with full traceability per project requirements
Application-specific specification documentation
Documentation availability depends on project scope and order quantity. Request details during RFQ.
Zero-order waveplates are thinner and have less wavelength/temperature sensitivity. Multiple-order waveplates are less expensive but more sensitive to wavelength and temperature changes.
Standard tolerance is ±λ/50 for multiple-order and ±λ/200 for zero-order waveplates. Tighter tolerances available on request.
Yes. Specify your laser power density for proper material and coating selection. Zero-order crystalline waveplates handle high power well.
Standard materials include quartz (for VIS-NIR), MgF₂ (for UV), and ZnSe (for IR). Achromatic waveplates use compound designs.
Provide: retardance (λ/4 or λ/2), design wavelength, clear aperture, and power requirements.
Crystalline waveplates typically operate from -40°C to +80°C. Achromatic waveplates may have more limited ranges.
Describe your optical system and our AI Optical Engineer will help identify the right specifications, materials, and coatings for your application.
Analyze My RequirementProvide your requirements and our engineering team will respond within 24 hours with a detailed quotation.