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TECHSPEC® components are designed, specified, or manufactured by Edmund Optics. TECHSPEC®組件由愛特蒙特光學設計、指定或製造。進一步瞭解

25.4mm Diameter x 350mm FL, Uncoated, IR Ultrafast Thin PCX Lens

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Stock #11-703 5-7 Days
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Product Details

Type:
Plano-Convex Lens

Physical & Mechanical Properties

Diameter (mm):
25.40 +0.00/-0.10
Centering (arcmin):
<3
Center Thickness CT (mm):
1.60 ±0.10
Edge Thickness ET (mm):
1.1
Clear Aperture CA (mm):
22.86
Bevel:
Protective bevel as needed

Optical Properties

Effective Focal Length EFL (mm):
350.41 @ 587.6nm
Back Focal Length BFL (mm):
349.31
Coating:
Uncoated
Substrate: Many glass manufacturers offer the same material characteristics under different trade names. Learn More
Fused Silica IR Grade
Surface Quality:
20-10
Power (P-V) @ 632.8nm:
1.5λ
Irregularity (P-V) @ 632.8nm:
λ/8
Focal Length Tolerance (%):
±1
Radius R1 (mm):
160.65
f/#:
13.78
Numerical Aperture NA:
0.037
Wavelength Range (nm):
200 - 3500

Regulatory Compliance

RoHS 2015:
Reach 219:
Certificate of Conformance:

產品系列說明

  • 以超薄中心厚度限制 GDD
  • 低損耗寬頻 IBS 抗反射鍍膜
  • 適合超快及雷射光學應用
  • 紫外線或紅外線級熔融石英基材

TECHSPEC® 超快薄型平凸透鏡採用超薄中心厚度設計,提供低群組延時色散 (GDD),適合超快雷射脈衝使用。TECHSPEC 超快薄型平凸透鏡適合由超快雷射光源及其對應諧波收集及聚焦光線,其中包括摻鈦藍寶石、Nd:YAG、鈥及銩等雷射。本系列薄型 PCX 透鏡提供標準尺寸,有效焦距為 50mm 至 2000mm。

紅外線等級熔融石英與紫外線等級熔融石英的差異,在於前者能夠減少 OH- 離子量,在整個近紅外線光譜產生更高的穿透效果,並在紫外線光譜減少穿透。

Filter

瞭解及指定雷射元件的LDT

雷射誘導損傷閾值 (LIDT) 或雷射損傷閾值 (LDT) 對於選擇或指定雷射光學器件至關重要。在愛特蒙特光學了解更多!

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光學鍍膜簡介

您是否正在尋找有關光學鍍膜的更多資訊?在愛特蒙特光學了解更多有關光學系統中使用的鍍膜的常見、定制和優點的資訊。

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高斯光束計算器

Multiphoton Microscopy

Multiphoton microscopy is ideal for capturing high-resolution 3D images with reduced photobleaching and phototoxicity compared to confocal microscopy.

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Basics of Ultrafast Lasers

Master the fundamentals of ultrafast lasers and how to choose optics that can withstand their high powers and short pulse durations.

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超快高色散反射鏡

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Group Delay Dispersion and White Light Interferometry

Understanding group delay dispersion (GDD) is critical for knowing how ultrafast laser pulses will be stretched or compressed.

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超快雷射的 LDT

超快雷射的短脈衝持續時間使其與光學元件的相互作用不同,從而影響光學元件的雷射損傷閾值。

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超快色散

超快雷射的短脈衝持續時間導致寬波長頻寬,使得超快系統特別容易受到色散和脈衝展寬的影響。

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Advances in laser technology have made it possible to produce pulses ranging from a few femtoseconds to tens of attoseconds. Learn more at Edmund Optics.

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Edmund Optics TPA Ultrafast Autocorrelator by APE (700-1100nm) #11-760

Edmund Optics® manufactures thousands of precision aspheric lenses per month in our asphere manufacturing cell that operates 24 hours a day

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使用高色散超快反射鏡提供色散補償

請觀看愛特蒙特光學的 TECHSPEC® 高色散超快反射鏡,瞭解本產品如何在超快雷射系統中補償色散並壓縮脈衝期。

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Edmund Optics - UltraFast Innovations - Partnership 2021

Industry-leading laser optics are more available than ever before through the partnership of UltraFast Innovations and Edmund Optics.

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Ultrafast Laser Optics from Edmund Optics - PhotonicsNEXT 2021

Learn about Edmund Optics' ultrafast laser optics capabilities in this interview with Tony Karam from the PhotonicsNEXT Summit in January 2021.

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Combatting thermal lensing in high-power ultrafast laser systems

Ultrafast Mirrors: The importance of high reflectance and dispersion control in ultrafast optics

The right stuff: Lasers and optics for ultrafast microscopy

How does group delay dispersion (GDD) relate to first order and higher order dispersion?

At what pulse duration is a laser considered to be “ultrafast?”

Why is chromatic dispersion important for ultrafast laser systems?

Why do ultrafast highly-dispersive mirrors have such low angles of incidence (AOIs)?

Do the short pulse durations of ultrafast lasers impact the laser induced damage threshold of ultrafast optics?

Laser

Laser Damage Threshold

色散

色散是光的相速度或相位延遲對另一個參數(例如波長、傳播模式或偏振)的依賴性。

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高色散反射鏡

超快高色散反射鏡對於超快雷射應用中的脈衝壓縮和色散補償、提高系統性能至關重要。

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Dispersion

Pulse Duration

Polarization Directed Flat Lenses Product Review

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Free-Space Optical Communication

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What is the best lens for focusing or collimating the output from a can-type laser diode?

常用雷射材料

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光束直徑對 LDT 的重要性

雷射直徑對光學元件的雷射誘導損傷 (LIDT) 影響很大,因為光束直徑直接影響雷射損傷的機率。

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What are the advantages of increasing lens diameter in high-power optical systems?

Increasing the diameter of optical components reduces power or energy density in a system, reducing the likelihood of laser-induced damage in high-power...

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Center Thickness (CT)

Dielectric Coating

Ion-Beam Sputtering (IBS)

Singlet Lens

Top Optics Trends of 2021 – TRENDING IN OPTICS: EPISODE 3

Several of the most interesting trends in optics and photonics of 2021 were the landing of the Perseverance Rover on Mars, Stemmed Mirrors, minimizing thermal lensing in ultrafast laser systems, and developments in ultraviolet lasers.

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A Guide to (Not Over) Specifying Losses in Laser Optics

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Modifying Stock Optics Tip #4: Add A Coating To A Stock Lens

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Free-Space Optical Communication – TRENDING IN OPTICS: EPISODE 6

Free-space optical (FSO) communications transmit information wirelessly through the air using lasers with improved bandwidth. Learn more!

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Development of a Robust Laser Damage Threshold Testbed

Development of US national laser damage standard: 2020 status

Irregularity

Radius of Curvature

Is it possible to directly measure absorption or scatter?

Diopter

不同類型的 LDT 規格

光學器件的雷射誘導損傷閾值(LIDT)是一個受缺陷密度、測試方法和雷射波動影響的統計值。

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了解表面品質規格

光學元件的表面品質取決於其表面的散射,這在雷射光學應用中尤其重要。

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Anti-Reflection (AR) Coating

Introduction to Basic Ray Optics

An understanding of refraction and basic ray optics is a critical foundation for understanding more complicated optical concepts and technologies.

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不同類型的 LDT 規格

並非所有光學元件都經過雷射誘導損傷閾值 (LIDT) 測試,且測試方法不同,導致 LIDT 規範類型不同。

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雷射系統關鍵參數

了解確保雷射應用成功必須考慮的關鍵參數。將為這些參數建立通用術語。

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測試雷射損傷閾值

測試雷射誘導損傷閾值 (LIDT) 尚未標準化,因此了解光學元件的測試方式對於預測性能至關重要。

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雷射光學度量

計量對於確保光學元件始終滿足其所需的規格至關重要,尤其是在雷射應用中。

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雷射偏振:偏振在雷射應用的重要性

了解雷射的偏振對於許多應用至關重要,因為偏振會影響反射率、聚焦光束和其他關鍵行為。

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Laser Optics Lab Trailer

The Laser Optics Lab video series discusses laser optics concepts including specifications, coating technologies, product types, and more

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Introduction to Laser Optics Lab

The Laser Optics Lab video series discusses laser optics concepts including specifications, coating technologies, product types, and more

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Laser Optics Lab:Back Reflections

Back reflections are created when some or part of your beam are reflected back to the source.

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Laser Optics Lab: Coatings

Optical coatings are composed of thin-film layers used to enhance transmission or reflection properties within an optical system.

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Laser Optics Lab:Specifications for Selecting a Laser

When determining which laser to use for your application, consider the following specifications: wavelength, coherence length, beam divergence, and Rayleigh range.

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LIGHT TALK - EPISODE 3: Laser Damage Testing with Matthew Dabney

Join our discussion around laser damage testing in the third episode of our LIGHT TALKS series.

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LIGHT TALK - EPISODE 4: Lasers & Optics with Kasia Sieluzycka and Nick Smith

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From tattoo removal to diagnosing cancer, lasers can transform our lives in countless ways. Join our conversation about laser in skin care and diagnostics.

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Resolving damage ambiguity and laser-induced damage threshold (LIDT) complications

The art and science of designing optics for laser-induced damage threshold

What makes laser optics different from normal optics?

Building a Mach-Zehnder Interferometer

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Transmission

Clear Aperture (CA)

Refraction

愛特蒙特光學遍佈全球的製造工廠

愛特蒙特光學® (EO) 在全球的五座製造工廠,每年製造數百萬件精密光學元件和子配件。

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Surface Quality

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25.0/25.4mm Optic Dia., 5 Axes Optical Mount Adjustable - Linear (XYZ) & Tip-Tilt #13-776 NT$24,675
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