IP Library Granted Patent US 10,393,643
Granted Patent B2
US 10,393,643 · App. 15/698,238 · Granted Aug 27, 2019

Optical vortex coronagraph scatterometer

Inventor: Grover A. Swartzlander, Jr. (Rochester, NY)
Assignee: Rochester Institute of Technology
G01N15/1434
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Quick Facts
Patent No.
US 10,393,643
App. No.
15/698,238
Granted
Aug 27, 2019
Kind
B2
Abstract

An optical vortex coronagraph scatterometer including a light source of wavelength λ, a scattering cell in optical communication with the light source, a circular aperture having a radius R at a distance d from the scattering cell in optical communication with the light source, a pivot point between the circular aperture and the scattering cell allowing relative movement of the light source and the scattering cell with respect to the circular aperture, a first lens at a focal length f 1 between the circular aperture and an optical vortex element, and a second lens at a focal length f 2 between the optical vortex element and a detector; and method for determining a scattering spectra at low and zero angles is disclosed.

Claims (27)

1. An optical vortex coronagraph scatterometer comprising:

a light source of wavelength λ;

a detector;

a scattering cell in optical communication with the light source;

a circular aperture having a radius R at a distance d from the scattering cell in optical communication with the light source;

a pivot point between the circular aperture and the scattering cell allowing relative movement of the light source and the scattering cell with respect to the circular aperture;

an optical vortex element;

a first lens comprising a focal length f 1 disposed between the circular aperture and the optical vortex element at a distance of f 1 from the circular aperture and a distance of f 1 from the optical vortex element; and

a second lens comprising a focal length f 2 disposed between the optical vortex element and the detector at a distance of f 2 from the detector and a distance of f 2 from the optical vortex element, wherein the optical vortex element is disposed between the circular aperture and the detector.

2. The scatterometer of claim 1 , wherein the optical vortex element comprises a holographic element, spiral phase plate, polarization diffraction grating, or a subwavelength diffraction grating.

3. The scatterometer of claim 1 , wherein the light source is a laser.

4. The scatterometer of claim 1 , wherein the detector is a photodiode, CCD or CMOS sensor array.

5. The scatterometer of claim 1 , further comprising a first goniometer arm having the light source and scattering cell mounted thereon.

6. The scatterometer of claim 1 , further comprising a second goniometer arm having the pivot point, aperture, first lens, second lens, vortex element, and detector mounted thereon.

7. The scatterometer of claim 1 , wherein the optical vortex element is capable of changing the phase of light from the light source.

8. A method for measuring the angular spectrum of scattered light, comprising:

providing an optical vortex coronagraph scatterometer comprising:

a light source;

a detector;

a scattering cell in optical communication with the light source;

a circular aperture having a radius R at a distance d from the scattering cell in optical communication with the light source;

a pivot point between the circular aperture and the scattering cell allowing relative movement of the light source and the scattering cell with respect to the circular aperture;

an optical vortex element;

a first lens comprising a focal length f1 disposed between the circular aperture and the optical vortex element at a distance of f 1 from the circular aperture and a distance of f 1 from the optical vortex element;

a second lens comprising a focal length f 2 disposed between the optical vortex element and the detector at a distance of f 2 from the detector and a distance of f 2 from the optical vortex element, wherein the optical vortex element is disposed between the circular aperture and the detector;

transmitting light from the light source through the scattering cell at a first angle of the pivot point; transmitting light from the light source through the scattering cell at a second angle of the pivot point; and

measuring the low-angle scattered light from the scattering cell at a plurality of angles comprising the first and second angles.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2017
From: SWARTZLANDER, GROVER A., JR.
To: ROCHESTER INSTITUTE OF TECHNOLOGY
Reel/Frame 043528/0735 →
Continuity (2)
Provisional Application 62384457 · Sep 7, 2016
Related Publication 20180067036A1 · Mar 8, 2018