Newport MKS Quarter Wave Plate, Multiple-Order, Quartz, 12.7 mm Diameter, 413 nm 05RP14-41

Description
The 05RP14-41 Multiple-Order Quarter Wave Plate is a crystal quartz optic designed to differentially retard the phase of a polarized beam. With the proper phase shift, this waveplate can be used to convert linear polarization into circular polarization. This 1/2 inch (12.7 mm) diameter wave plate is 1 mm thick and has λ/4 (90°) retardation. It is antireflection coated to maximize transmission at 413 nm. When using multiple-order wave plates, several items should be considered. A wave plate of practical thickness produces a multiple of λ/4 or λ/2 retardation. Higher orders cause retardation to vary dramatically with wavelength. Wave plates are sensitive to temperature changes. A typical multiple-order wave plate has a temperature coefficient of 0.0015λ/°C, compared to 0.0001λ/°C for a zero-order wave plate, so tighter temperature control will be required. Precise adjustment of retardation is possible by tilting the wave plate. Tilting about the slow axis increases retardation, while tilting about the fast axis reduces retardation.
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Description
The 05RP14-41 Multiple-Order Quarter Wave Plate is a crystal quartz optic designed to differentially retard the phase of a polarized beam. With the proper phase shift, this waveplate can be used to convert linear polarization into circular polarization. This 1/2 inch (12.7 mm) diameter wave plate is 1 mm thick and has λ/4 (90°) retardation. It is antireflection coated to maximize transmission at 413 nm. When using multiple-order wave plates, several items should be considered. A wave plate of practical thickness produces a multiple of λ/4 or λ/2 retardation. Higher orders cause retardation to vary dramatically with wavelength. Wave plates are sensitive to temperature changes. A typical multiple-order wave plate has a temperature coefficient of 0.0015λ/°C, compared to 0.0001λ/°C for a zero-order wave plate, so tighter temperature control will be required. Precise adjustment of retardation is possible by tilting the wave plate. Tilting about the slow axis increases retardation, while tilting about the fast axis reduces retardation.
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Quarter Wave Plate, Multiple-Order, Quartz, 12.7 mm Diameter, 413 nm - 05RP14-41 - Newport MKS
Irvine, CA, United States
Quarter Wave Plate, Multiple-Order, Quartz, 12.7 mm Diameter, 413 nm
05RP14-41
Quarter Wave Plate, Multiple-Order, Quartz, 12.7 mm Diameter, 413 nm 05RP14-41
The 05RP14-41 Multiple-Order Quarter Wave Plate is a crystal quartz optic designed to differentially retard the phase of a polarized beam. With the proper phase shift, this waveplate can be used to convert linear polarization into circular polarization. This 1/2 inch (12.7 mm) diameter wave plate is 1 mm thick and has λ/4 (90°) retardation. It is antireflection coated to maximize transmission at 413 nm. When using multiple-order wave plates, several items should be considered. A wave plate of practical thickness produces a multiple of λ/4 or λ/2 retardation. Higher orders cause retardation to vary dramatically with wavelength. Wave plates are sensitive to temperature changes. A typical multiple-order wave plate has a temperature coefficient of 0.0015λ/°C, compared to 0.0001λ/°C for a zero-order wave plate, so tighter temperature control will be required. Precise adjustment of retardation is possible by tilting the wave plate. Tilting about the slow axis increases retardation, while tilting about the fast axis reduces retardation.

The 05RP14-41 Multiple-Order Quarter Wave Plate is a crystal quartz optic designed to differentially retard the phase of a polarized beam. With the proper phase shift, this waveplate can be used to convert linear polarization into circular polarization. This 1/2 inch (12.7 mm) diameter wave plate is 1 mm thick and has λ/4 (90°) retardation. It is antireflection coated to maximize transmission at 413 nm. When using multiple-order wave plates, several items should be considered. A wave plate of practical thickness produces a multiple of λ/4 or λ/2 retardation. Higher orders cause retardation to vary dramatically with wavelength. Wave plates are sensitive to temperature changes. A typical multiple-order wave plate has a temperature coefficient of 0.0015λ/°C, compared to 0.0001λ/°C for a zero-order wave plate, so tighter temperature control will be required. Precise adjustment of retardation is possible by tilting the wave plate. Tilting about the slow axis increases retardation, while tilting about the fast axis reduces retardation.

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Technical Specifications

  Newport MKS
Product Category Waveplates and Retardation Plates
Product Number 05RP14-41
Product Name Quarter Wave Plate, Multiple-Order, Quartz, 12.7 mm Diameter, 413 nm
Material Quartz
Surface Quality 10-5 Scratch / Dig
Wavelength Range 413 nm (4130 Å)
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