IP Library Granted Patent US 11,268,849
Granted Patent B2
US 11,268,849 · App. 16/391,068 · Granted Mar 8, 2022

Sensing unit having photon to electron converter and a method

Inventor: Pavel Margulis (Ashdod, IL)
Assignee: Applied Materials Israel Ltd.
G01J1/0407G01J1/42
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Quick Facts
Patent No.
US 11,268,849
App. No.
16/391,068
Granted
Mar 8, 2022
Kind
B2
Abstract

A method, an inspection system and a sensing unit. The sensing unit may include a light recycling optics and a photon to electron converter. The photon to electron converter is configured to receive a first light beam emitted from the object and impinging on the partially reflective surface at a first oblique angle, absorb a first portion and reflect a second portion of the first light beam to provide a first reflected beam. The light recycling optics is configured to redirect, towards the partially reflective surface, one or more reflected beams reflected from the partially reflective surface to provide one or more recycled beams. The photon to electron converter is configured to output electrons that represents an absorbed portion of the input light beam and an absorbed portion of each one of the one or more recycled beam.

Claims (44)

1. A sensing unit, comprising:

a light recycling optics and a photon to electron converter;

wherein the photon to electron converter comprises a partially reflective surface;

wherein the photon to electron converter is configured to:

receive a first light beam emitted from an object and impinging on the partially reflective surface at a first oblique angle;

absorb a first portion of the first light beam; and

reflect a second portion of the first light beam to provide a first reflected beam;

wherein the light recycling optics comprise a first reflecting element that is positioned to receive the first reflected beam reflected from the partially reflective surface and to either: (i) redirect the first reflected beam directly to the partially reflective surface as a recycled beam, or (ii) redirect the first reflected beam directly to a second reflecting element as an intermediate beam, and the second reflecting element is positioned to receive the intermediate beam and reflect the intermediate beam directly to the partially reflective surface as the recycled beam; and

wherein the photon to electron converter is configured to output electrons that represent the first portion of the first light beam and an absorbed portion of the recycled beam.

2. The sensing unit according to claim 1 wherein the partially reflective surface lacks an anti-reflective coating layer.

3. The sensing unit according to claim 1 wherein the first reflecting element comprises a first mirror that is oriented to the partially reflective surface.

4. The sensing unit according to claim 1 wherein the light recycling optics comprise multiple mirrors.

5. The sensing unit according to claim 1 wherein the light recycling optics is spaced apart from the photon to electron converter.

6. The sensing unit according to claim 1 wherein a part of the light recycling optics contacts the photon to electron converter.

7. The sensing unit according to claim 1 wherein the photon to electron converter is also configured to allow a third portion of the first light beam to propagate through the photon to electron converter and exit the photon to electron converter to provide a first transmissive beam; wherein the light recycling optics comprises at least one additional reflecting element that is shaped and positioned to redirect, towards the photon to electron converter, the first transmissive beam to provide an additional recycled beam.

8. The sensing unit according to claim 1 wherein the photon to electron converter is a photo-sensor.

9. The sensing unit according to claim 1 wherein the photon to electron converter is a reflecting photo-cathode.

10. The sensing unit according to claim 1 wherein the photon to electron converter is a transmissive photo-cathode.

11. A method for detecting light emitted from an object, comprising:

receiving, by a partially reflective surface of a photon to electron converter, a first light beam emitted from an object and impinging on the partially reflective surface at a first oblique angle;

absorbing, by the photon to electron converter, a first portion of the first light beam and reflecting a second portion of the first light beam to provide a first reflected beam;

receiving, by a first reflecting element, the first reflected beam reflected from the partially reflective surface, and either:

redirecting the first reflected beam directly to the partially reflective surface as a recycled beam, or

redirecting the first reflected beam directly to a second reflecting element as an intermediate beam, the second reflecting element receiving the intermediate beam and reflecting the intermediate beam directly to the partially reflective surface as the recycled beam; and

generating, by the photon to electron converter, output electrons that represent the first portion of the first light beam and an absorbed portion of the recycled beam.

12. An inspection system comprising:

an illumination optics, and a sensing unit; wherein the illumination optics is configured to illuminate an object with light; and

a light recycling optics and a photon to electron converter;

wherein the photon to electron converter comprises a partially reflective surface;

wherein the photon to electron converter is configured to:

receive a first light beam emitted from the object and impinging on the partially reflective surface at a first oblique angle;

absorb a first portion of the first light beam; and

reflect a second portion of the first light beam to provide a first reflected beam;

wherein the light recycling optics comprise a first reflecting element that is positioned to receive the first reflected beam reflected from the partially reflective surface and to either: (i) redirect the first reflected beam directly to the partially reflective surface as a recycled beam, or (ii) redirect the first reflected beam directly to a second reflecting element as an intermediate beam, and the second reflecting element is positioned to receive the intermediate beam and reflect the intermediate beam directly to the partially reflective surface as the recycled beam; and

wherein the photon to electron converter is configured to output electrons that represent the first portion of the first light beam and an absorbed portion the recycled beam.

13. A sensing unit, comprising:

a light recycling optics and a photon to electron converter;

wherein the photon to electron converter comprises a partially reflective surface;

wherein the photon to electron converter is configured to:

receive a first light beam emitted from an object and impinging on the partially reflective surface at a first oblique angle;

absorb a first portion of the first light beam; and

reflect a second portion of the first light beam to provide a first reflected beam;

wherein the light recycling optics comprise at least one reflecting element that is shaped and positioned to receive the first reflected beam from the partially reflective surface and redirect the first reflected beam directly to the partially reflective surface as a recycled beam; and

wherein the photon to electron converter is configured to output electrons that represents the first portion of the first light beam and an absorbed portion of the recycled beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 8, 2019
From: MARGULIS, PAVEL
To: APPLIED MATERIALS ISRAEL LTD.
Reel/Frame 049112/0888 →
Continuity (1)
Related Publication 20200333180A1 · Oct 22, 2020