Bandwidth Splitter 1.38 📣

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Bandwidth Splitter 1.38 📣


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Bandwidth Splitter 1.38

the beamsplitters we offer in our metal block packages are constructed with a series of alternating coatings and air gaps. the coating surfaces are individually polished and individually coated before the appropriate air gap is placed between them. all the surfaces are passivated and anodized. they are compatible with all index of refraction matching fluids. for further information on the design and materials used in our metal block package beamsplitters, click here.

our ellipsometric beamsplitters can be aligned and oriented by two optical fiber connectors. in addition, we have a one-axis fiber mounting system available, which is useful for aligning the splitter at the exit from the fiber. the alignment tolerances for our ellipsometric beamsplitters are ±2.5° of rotation and ±5 μm of translational offset. the tolerances for our one-axis fiber mounting system are ±20 μm of translational offset and ±2° of rotation.

thorlabs’ polarization beamsplitters are available in a variety of configurations, including beamsplitters that are both parallel and perpendicularly polarized, including elliptically polarized. all of these polarization beamsplitters are available with a variety of angles of incidence (0° to 90°). as with our variable focal distance filters, our polarization beamsplitters are available in both tungsten and fused silica materials. all filters are internally coated and have a flat front face. for further information on the design and materials used in our polarization beamsplitters, click here.

thorlabs’ polarizing beamsplitters are available in a variety of configurations, including beamsplitters that are both parallel and perpendicularly polarized, and elliptically polarized. all of these polarization beamsplitters are available with a variety of angles of incidence (0° to 90°). as with our variable focal distance filters, our polarization beamsplitters are available in both tungsten and fused silica materials. all filters are internally coated and have a flat front face. for further information on the design and materials used in our polarization beamsplitters, click here.

the following plot shows the relative total power throughput (beam power divided by input power) for the three types of beamsplitters. the plate beamsplitter shows the least relative power loss and the cube shows the greatest relative power loss. both types of beamsplitters show an inverse-squared law for power throughput versus angle of incidence. the pellicle beamsplitter does not demonstrate this effect as it does not have any internal reflector. from this data the plate beamsplitter is ideal for low power applications where low insertion loss and low angle dependency are important. the cube beamsplitter shows poor power throughput and a large angle of incidence dependency. from this data the plate beamsplitter is ideal for high power applications.
the following plot shows the output polarization angle for the three types of beamsplitters. here the results for the plate, cube, and pellicle are very similar. the smallest difference between the polarization angle of the reflected and transmitted beams is about 1.5 degrees. the cube beamsplitter has the worst output polarization angle for reflection, showing signs of absorption inside the optic. the pellicle beamsplitter shows no absorption and this optic is recommended for applications where the reflection angle is critical. the following plot summarizes the results for the split ratio (beam power divided by input power) for the beamsplitters. the plate beamsplitter shows the most ideal for 50/50 power splitting. for details on the experimental setup employed and the results summarized here, please click here.
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