Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Four-plane space-variant Fresnel-transform optical processor with a random phase encoder.

Applied optics·2010
Same author

Reduction of the zero-order intensity in binary Dammann gratings.

Applied optics·2010
Same author

Gray-scale masks for diffractive-optics fabrication: II. Spatially filtered halftone screens.

Applied optics·2010
Same author

Specifying dispersion in the design of diffractive optics.

Applied optics·2010
Same author

Fidelity of POSTSCRIPT-generated masks for diffractive optics fabrication.

Applied optics·2010
Same author

Binary-mask generation for diffractive optical elements using microcomputers.

Applied optics·2010

Related Experiment Video

Updated: Jun 6, 2026

Microfabrication of Implantable Optics Integrated in a Microstructured Imaging Window for Advanced In Vivo Imaging
07:14

Microfabrication of Implantable Optics Integrated in a Microstructured Imaging Window for Advanced In Vivo Imaging

Published on: April 11, 2025

Gray-scale masks for diffractive-optics fabrication: I. Commercial slide imagers.

T J Suleski, D C O'Shea

    Applied Optics
    |November 10, 2010
    PubMed
    Summary

    This study presents a simplified method for fabricating diffractive optics using a single gray-scale mask, reducing complexity and cost. This technique achieves high diffraction efficiencies, making advanced optical elements more accessible.

    More Related Videos

    Fabrication of High Contrast Gratings for the Spectrum Splitting Dispersive Element in a Concentrated Photovoltaic System
    12:08

    Fabrication of High Contrast Gratings for the Spectrum Splitting Dispersive Element in a Concentrated Photovoltaic System

    Published on: July 18, 2015

    Optical Scatter Microscopy Based on Two-Dimensional Gabor Filters
    14:58

    Optical Scatter Microscopy Based on Two-Dimensional Gabor Filters

    Published on: June 2, 2010

    Related Experiment Videos

    Last Updated: Jun 6, 2026

    Microfabrication of Implantable Optics Integrated in a Microstructured Imaging Window for Advanced In Vivo Imaging
    07:14

    Microfabrication of Implantable Optics Integrated in a Microstructured Imaging Window for Advanced In Vivo Imaging

    Published on: April 11, 2025

    Fabrication of High Contrast Gratings for the Spectrum Splitting Dispersive Element in a Concentrated Photovoltaic System
    12:08

    Fabrication of High Contrast Gratings for the Spectrum Splitting Dispersive Element in a Concentrated Photovoltaic System

    Published on: July 18, 2015

    Optical Scatter Microscopy Based on Two-Dimensional Gabor Filters
    14:58

    Optical Scatter Microscopy Based on Two-Dimensional Gabor Filters

    Published on: June 2, 2010

    Area of Science:

    • Optics and Photonics
    • Materials Science
    • Nanofabrication

    Background:

    • Traditional diffractive optics fabrication involves multiple photolithographic steps, increasing complexity and susceptibility to errors.
    • Errors in alignment or etching during multi-step fabrication significantly reduce the efficiency of diffractive optical elements.
    • There is a need for simplified, cost-effective methods to produce high-efficiency diffractive optics.

    Purpose of the Study:

    • To develop an accessible procedure for fabricating diffractive optics with reduced complexity and cost.
    • To demonstrate the use of a single gray-scale mask for creating multiple-level or continuous relief structures (kinoforms).
    • To evaluate the efficiency of diffractive elements fabricated using the proposed gray-scale mask technique.

    Main Methods:

    • Generated gray-scale patterns using commercial slide imagers.
    • Photoreduced gray-scale patterns onto low-contrast film plates.
    • Utilized photoreduced patterns as lithographic masks for photoresist fabrication of diffractive optics, including lenses and blazed gratings.

    Main Results:

    • Successfully fabricated diffractive-optic lenses and blazed gratings using the single gray-scale mask procedure.
    • Achieved first-order diffraction efficiencies as high as 85% for the fabricated blazed gratings.
    • Demonstrated the feasibility of constructing multiple-level or continuous relief structures (kinoforms).

    Conclusions:

    • The single gray-scale mask technique offers a simplified and cost-effective approach to diffractive optics fabrication.
    • This method significantly reduces fabrication complexity compared to traditional multi-step photolithography.
    • The technique shows promise for producing high-efficiency diffractive elements, though advantages and limitations require further discussion.