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ロション偏光プリズム α-BBO 25mm

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商品コード #68-827 お問い合わせ
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¥157,450
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¥157,450
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仕様

概要

タイプ:
Linear Polarizer

物理的および機械的特性

有効径 CA (mm):
10.0
直径 (mm):
25.40
全長 (mm):
18.00
寸法公差 (mm):
+0.0/-0.2
構造:
Crystalline Rochon Polarizer
全長公差 (mm):
±0.1
ハウジング:
Black Anodized Aluminum

光学的特性

消光比:
200,000:1
基板: Many glass manufacturers offer the same material characteristics under different trade names. Learn More
α-BBO
表面品質 (キズ-ブツ):
20-10
透過波面精度, P-V:
λ/4 @ 632.8nm
ビーム偏角精度 (分):
<3
波長範囲 (nm):
200 - 3500
損傷閾値, 設計上: Damage threshold for optical components varies by substrate material and coating. Click here to learn more about this specification.
10 J/cm2 @ 1064nm, 20ns
分離角度 (°):
8.0 - 14 (8 @ 800nm)

法規制対応状況

RoHS 2011/65:
非適合
適合証明書:

商品説明

  • 複数の偏光材料をラインナップ
  • 常光線の光を偏向することなく透過
  • 異常光線の光を偏向して透過
  • ウォラストン偏光プリズムもラインナップ

ロションプリズムは、複屈折性を持つ2個の直角プリズムをオプティカルコンタクトで接合して作られます。 常光線と異常光線は、二番目のプリズムに入射するまでは分離しません。常光線は、二番目のプリズムに入射する際には屈折率が変化しないため、光は屈折することなく直進します。これに対し、異常光線は、屈折率が変化するため、2個のプリズムの境界面で屈折します。

技術情報

 
Stock No. Outer Diameter Clear Aperture Length
#68-824 25.4mm 10.0mm 28.0mm
#68-825 25.4mm 10.0mm 28.0mm
#68-826 25.4mm 10.0mm 16.0mm
#68-827 25.4mm 10.0mm 18.0mm

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参考資料

Filter

偏光入門(偏光板の原理と仕組み)

偏光板は、特定の偏光を選別するために使用されます。ここでは偏光板(ポラライザー)を理解する際に重要な偏光の原理と仕組みから解説します。

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Polarizer Selection Guide

Edmund Optics' Polarizer Selection Guide refines your search for a specific type of polarizer.

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波長板と位相差板の理解

波長板と位相差板の用語、仕様、製作、構造。及び、正しい波長板の選定やアプリケーション事例について。位相差板としても知られる波長板は、光を透過し、ビームを減衰、偏位、あるいは変位させることなく、その偏光状態を修正します。波長板は、偏光の一つの成分をそれが直交する成分に対して位相を遅らせる (遅延させる) ことによって偏光状態を変化させます。

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Polarization Overview - Part 1: Polarization Basics

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Polarization Overview - Part 2: Waveplates & Retarders (Advanced)

Waveplates and retarders are optical components designed to transmit light while modifying its polarization state without attenuating, deviating, or displacing the beam.

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You offer many types of polarizers. What are some key benefits to help me decide which is best for my application?

Are the polarizers shipped with a protective film?

What is the difference between s- and p-polarization states?

What are the meanings for the different terms used for polarizers?

直線偏光板の偏光軸をどのようにして見つける?

直線偏光板の偏光軸は、偏光した光が通過する偏光面を決定付けます。偏光板の偏光軸を見つけるには2つの方法があります。最も簡単な方法は、軸の向きが既知の偏光板を用いて偏光軸を見つける方法です。

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When you list the average transmission of a polarizer, what is the difference between single, parallel, and crossed?

I have a linear polarizer glass filter and would like to create circularly polarized light. What type of optics do I need for this?

What is the maximum amount of light a polarizer can transmit?

Does the circular polarizer material have to face a particular direction?

What is the fast and slow axis of a retarder and how do they differ?

How can I find the fast and slow axes of a retarder?

What is the difference between multiple and zero-order retarders and when should I pick one over the other?

How can I determine if a retarder is quarter or half wave?

Can I adapt a retarder for use with a specific wavelength other than the design wavelength?

What is the benefit of polymer retarders?

Analyzer

Birefringence

Circular Polarizer

Polarization

Polarizer

Polarizing Efficiency

P-Polarization

Retardance

Retarder (Waveplate)

S-Polarization

Unpolarized

Wire Grid Polarizer

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Does the polarization of light change when it passes through a beamsplitter?

I would like to split light from a circularly polarized laser source into two beams. What happens when it passes through a cube beamsplitter – both non-polarizing and polarizing?

Does light entering a multimode fiber undergo a polarization change during propagation through the fiber? If so, can the emerging light be linearly polarized by placing a polarizer at the fiber’s output end?

Why does the polarization of a laser matter?

The polarization state of a laser source is important for many different applications.

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Extinction Ratio

Non-Polarizing Beamsplitter

Polarizing Beamsplitter

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