Choosing the right polarizing beam splitter is critical for achieving stable and accurate optical performance. Key factors such as extinction ratio, wavelength, transmission, reflection, wavefront quality, and beam deviation should be matched to the requirements of the optical system. This guide focuses on the key specifications buyers should check before selecting a polarizing beam splitter.
What Specifications Should You Check Before Buying a Polarizing Beam Splitter?
Before purchasing a polarizing beam splitter, buyers should compare the key optical specifications with the requirements of their system.
Extinction Ratio
For precision optical systems, extinction ratio is one of the most important specifications.
The dual-channel PBS offers:
l Tp/Ts >1000:1
l Rs/Rp >200:1
A high extinction ratio is suitable for applications where polarization separation needs to be well controlled.
Transmission and Reflection Efficiency
Both output channels should be checked:
l Tp >97%
l Rs >99.5%
This is particularly important when both transmitted and reflected beams are used in the optical system.
Design Wavelength
Choose the PBS according to the operating laser wavelength. Standard options include:
l 633 nm
l 780 nm
l 1064 nm
Wavefront Distortion
For precision applications such as interferometers, wavefront quality directly affects optical performance.
The product specification is:
l Transmitted wavefront distortion: λ/8 @ 632.8 nm per 10 mm
l Reflected wavefront distortion: λ/8 @ 632.8 nm per 10 mm
Beam Deviation
Beam deviation should be considered when the PBS is installed in a precision optical path.
The specified beam deviation is <3 arc minutes.
Clear Aperture and Surface Quality
The product provides:
l Clear aperture: >90%
l Surface quality: 60/40 scratch-dig
l Dimensional tolerance: ±0.2 mm
These specifications should be checked against the mechanical and optical requirements of the equipment.
Laser Damage Threshold
For laser applications, confirm that the damage threshold is suitable for the operating power.
The product is specified at:
>500 mJ/cm², 20 ns, 20 Hz @ 1064 nm
For most B2B purchases, these specifications are enough to determine whether a standard PBS can meet the requirements or whether a custom solution is needed.
Choose the Right Wavelength for Your Optical Instrument
The design wavelength should match the laser wavelength used in the optical system. For the dual-channel polarizing beam splitter, standard options are available for 633 nm, 780 nm, and 1064 nm, allowing buyers to select a PBS based on the actual laser source rather than choosing a general-purpose model.
633 nm
For optical systems using a 633 nm laser, standard models include PBST1212-633 and PBST2525-633, available in 12.7 × 12.7 mm and 25.4 × 25.4 mm sizes.
780 nm
For systems operating at 780 nm, the PBST1212-780 and PBST2525-780 models provide the corresponding wavelength design. These are suitable when the optical system is built around a 780 nm laser source.
1064 nm
For 1064 nm laser systems, standard models include PBST1212-1064 and PBST2525-1064. The 1064 nm option is also available with the same standard 12.7 mm and 25.4 mm sizes.
Across these standard wavelength options, the dual-channel PBS is designed for high polarization separation, with Tp/Ts >1000:1, Rs/Rp >200:1, Tp >97%, and Rs >99.5%. If the required wavelength, size, coating, or optical performance falls outside the standard specifications, a custom PBS should be considered.
56° Polarizing Beam Splitter Plates
|
Model |
Material |
Size (mm) |
Thickness (mm) |
Extinction Ratio (Tp/Ts) |
Design Wavelength (nm) |
Angle of Incidence (°) |
|
PBP25-266-56 |
UV Fused Silica |
25.4 |
3 |
>100:1 |
266 |
56 |
|
PBP30-266-56 |
UV Fused Silica |
30 |
3 |
>100:1 |
266 |
56 |
|
PBP50-266-56 |
UV Fused Silica |
50.8 |
3 |
>100:1 |
266 |
56 |
|
PBP25-355-56 |
UV Fused Silica |
25.4 |
3 |
>100:1 |
355 |
56 |
|
PBP30-355-56 |
UV Fused Silica |
30 |
3 |
>100:1 |
355 |
56 |
|
PBP50-355-56 |
UV Fused Silica |
50.8 |
3 |
>100:1 |
355 |
56 |
|
PBP25-532-56 |
H-K9L |
25.4 |
3 |
>100:1 |
532 |
56 |
|
PBP30-532-56 |
H-K9L |
30 |
3 |
>100:1 |
532 |
56 |
|
PBP50-532-56 |
H-K9L |
50.8 |
3 |
>100:1 |
532 |
56 |
|
PBP12-1064-56 |
H-K9L |
12.7 |
3 |
>100:1 |
1064 |
56 |
|
PBP25-1064-56 |
H-K9L |
25.4 |
3 |
>100:1 |
1064 |
56 |
|
PBP30-1064-56 |
H-K9L |
30 |
3 |
>100:1 |
1064 |
56 |
|
PBP50-1064-56 |
H-K9L |
50.8 |
3 |
>100:1 |
1064 |
56 |
45° Polarizing Beam Splitter Plates
|
Model |
Material |
Size (mm) |
Thickness (mm) |
Extinction Ratio (Tp/Ts) |
Design Wavelength (nm) |
Angle of Incidence (°) |
|
PBP12-355-45 |
UV Fused Silica |
12.7 |
3 |
>200:1 |
355 |
45 |
|
PBP25-355-45 |
UV Fused Silica |
25.4 |
6.35 |
>200:1 |
355 |
45 |
|
PBP50-355-45 |
UV Fused Silica |
50.8 |
6.35 |
>200:1 |
266 |
45 |
|
PBP12-532-45 |
UV Fused Silica |
12.7 |
3 |
>200:1 |
532 |
45 |
|
PBP25-532-45 |
UV Fused Silica |
25.4 |
6.35 |
>200:1 |
532 |
45 |
|
PBP50-532-45 |
UV Fused Silica |
50.8 |
6.35 |
>200:1 |
532 |
45 |
|
PBP12-633-45 |
UV Fused Silica |
12.7 |
3 |
>200:1 |
633 |
45 |
|
PBP25-633-45 |
UV Fused Silica |
25.4 |
6.35 |
>200:1 |
633 |
45 |
|
PBP50-633-45 |
UV Fused Silica |
50.8 |
6.35 |
>200:1 |
633 |
45 |
|
PBP12-780-45 |
UV Fused Silica |
12.7 |
3 |
>200:1 |
780 |
45 |
|
PBP25-780-45 |
UV Fused Silica |
25.4 |
6.35 |
>200:1 |
780 |
45 |
|
PBP50-780-45 |
UV Fused Silica |
50.8 |
6.35 |
>200:1 |
780 |
45 |
|
PBP12-1064-45 |
UV Fused Silica |
12.7 |
3 |
>200:1 |
1064 |
45 |
|
PBP25-1064-45 |
UV Fused Silica |
25.4 |
6.35 |
>200:1 |
1064 |
45 |
|
PBP50-1064-45 |
UV Fused Silica |
50.8 |
6.35 |
>200:1 |
1064 |
45 |
How to Choose the Right PBS Size and Optical Performance?
PBS size should be selected based on the available mounting space, beam diameter, and optical performance requirements of the equipment. A larger PBS is not always better. The right size should provide sufficient clear aperture while fitting the optical mount and maintaining the required beam quality.
12.7 × 12.7 mm
A 12.7 × 12.7 mm PBS is suitable for compact optical systems where installation space is limited. It is a practical choice for laboratory instruments, compact laser systems, and optical modules with relatively small beam diameters.
25.4 × 25.4 mm
A 25.4 × 25.4 mm PBS is better suited to systems with larger beams or more installation space. For industrial optical equipment, measurement systems, and OEM equipment, this size can provide more flexibility for beam alignment and mechanical integration.
Clear Aperture
The clear aperture should be large enough for the actual beam to pass through without clipping. When the beam diameter is relatively large or the optical system requires alignment tolerance, buyers should choose a PBS with sufficient clear aperture rather than selecting the smallest available size.
Beam Deviation
For precision optical equipment, beam deviation directly affects alignment and the position of the output beam. A tighter beam deviation specification should be considered for interferometers, measurement systems, and other applications where precise beam positioning is required.
Wavefront Distortion
Wavefront distortion becomes more important when the PBS is used in high-precision imaging, interferometry, laser measurement, or other systems that are sensitive to optical wavefront quality. For example, the dual-channel PBS can achieve λ/8 wavefront distortion at 632.8 nm per 10 mm for both transmitted and reflected beams.
Dimensional Tolerance
Dimensional tolerance should be checked against the optical mount and mechanical assembly. For applications using standard mounts, standard dimensions can usually be selected directly. If the PBS needs to fit a non-standard holder or a customized optical assembly, tighter dimensional requirements can be specified during the quotation stage.
Practical Selection Guide
For procurement, the selection can be simplified as follows:
|
Equipment Requirement |
Recommended Selection |
|
Compact optical module / limited installation space |
12.7 × 12.7 mm |
|
Larger beam or more installation space |
25.4 × 25.4 mm |
|
Precision beam alignment |
Low beam deviation |
|
Interferometer / precision measurement |
Low wavefront distort |
How to Choose a Reliable Polarizing Beam Splitter Manufacturer?
When selecting a polarizing beam splitter manufacturer, buyers should look beyond the product price and check whether the supplier can consistently meet the required wavelength, extinction ratio, optical accuracy, dimensions, and coating specifications. Manufacturing and customization capabilities are also important for OEM optical systems.
Wuhan Star Optic Technology Co., Ltd. (STAR OPTIC) is a China-based optical components manufacturer offering polarizing optics, optical beam splitters, optical coatings, and other precision optical components. Its product range includes polarizing beam splitter plates, dual-channel polarizing beam splitters, and high-power polarizing beam splitter cubes.
For buyers with specific requirements, STAR OPTIC can support customized optical components based on design wavelength, size, optical performance, coating, and application requirements. This makes it suitable for laboratory instruments, laser systems, optical measurement equipment, and OEM projects.
For standard or custom polarizing beam splitter requirements, buyers can visit STAR OPTIC to review available products and submit technical requirements for quotation.