IP Library › Granted Patent US 12,422,598
Granted Patent B2
US 12,422,598 · App. 17/900,234 · Granted Sep 23, 2025

ATR prism and method of manufacturing ATR prism

Inventor: Mitsuru Tomita (Shiga, JP)
Assignee: NIPPON ELECTRIC GLASS CO., LTD.
G02B5/04G01N21/552
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Quick Facts
Patent No.
US 12,422,598
App. No.
17/900,234
Granted
Sep 23, 2025
Kind
B2
Abstract

Provided is an ATR prism, including glass having an internal transmittance of 90% or higher at a wavelength falling within a wavelength range of from 8 μm to 10 μm when the glass has a thickness of 2 mm.

Claims (45)

1. An attenuated total reflection (ATR) prism comprising:

glass having an internal transmittance of 90% or higher at a wavelength falling within a wavelength range of from 8 μm to 10 μm when the glass has a thickness of 2 mm;

an incident portion on which light having a wavelength falling within the wavelength range is incident;

a reflecting portion configured to reflect the light;

an exit portion configured to allow the light to exit; and

a lens portion formed integrally with the incident portion,

wherein the incident portion is formed integrally with the reflecting portion,

wherein the reflecting portion comprises a reflecting surface configured to reflect the light,

wherein the lens portion is formed on the reflecting surface, and

wherein the lens portion is formed on a recessed portion formed in the reflecting surface so as to prevent the lens portion from projecting beyond the reflecting surface.

2. The ATR prism according to claim 1 ,

wherein the recessed portion comprises a positioning portion configured to allow positioning of a light source configured to radiate the light to the incident portion.

3. A method of manufacturing the ATR prism of claim 1 , the method comprising a molding step of forming the ATR prism by pressing base-material glass with molding dies while heating the base-material glass.

4. The ATR prism according to claim 1 , wherein the glass comprises chalcogenide glass.

5. The ATR prism according to claim 4 , wherein the chalcogenide glass contains sulfur at a mole percent falling within a range of from 50% to 80%, antimony at a mole percent larger than 0% and equal to or smaller than 40%, germanium at a mole percent larger than 0% and equal to or smaller than 18%, tin at a mole percent falling within a range of from 0% to 20%, and bismuth at a mole percent falling within a range of from 0% to 20%.

6. The ATR prism according to claim 4 , wherein the chalcogenide glass contains tellurium at a mole percent falling within a range of from 4% to 80%, germanium at a mole percent larger than 0% and equal to or smaller than 50%, and gallium at a mole percent falling within a range of from 0% to 20%.

7. The ATR prism according to claim 1 , wherein the lens portion of the incident portion comprises a plurality of lens portions.

8. An attenuated total reflection (ATR) prism comprising:

glass having an internal transmittance of 90% or higher at a wavelength falling within a wavelength range of from 8 μm to 10 μm when the glass has a thickness of 2 mm;

an incident portion on which light having a wavelength falling within the wavelength range is incident;

a reflecting portion configured to reflect the light;

an exit portion configured to allow the light to exit; and

a lens portion formed integrally with the exit portion,

wherein the exit portion is formed integrally with the reflecting portion,

wherein the reflecting portion comprises a reflecting surface configured to reflect the light,

wherein the lens portion is formed on the reflecting surface, and

wherein the lens portion is formed on a recessed portion formed in the reflecting surface so as to prevent the lens portion from projecting beyond the reflecting surface.

9. The ATR prism according to claim 8

wherein the recessed portion comprises a positioning portion configured to allow positioning of a light-receiving part configured to receive the light from the exit portion.

10. The ATR prism according to claim 8 , wherein the lens portion of the exit portion comprises a plurality of lens portions.

11. An attenuated total reflection (ATR) prism comprising:

glass having an internal transmittance of 90% or higher at a wavelength falling within a wavelength range of from 8 μm to 10 μm when the glass has a thickness of 2 mm;

an incident portion on which light having a wavelength falling within the wavelength range is incident;

a reflecting portion configured to reflect the light;

an exit portion configured to allow the light to exit;

a first lens portion formed integrally with the incident portion; and

a second lens portion formed integrally with the exit portion,

wherein the incident portion and the exit portion are formed integrally with the reflecting portion,

wherein the reflecting portion comprises a reflecting surface configured to reflect the light,

wherein the first lens portion of the incident portion and the second lens portion of the exit portion are formed on the reflecting surface,

wherein the first lens portion of the incident portion is formed on a first recessed portion formed in the reflecting surface so as to prevent the first lens portion from projecting beyond the reflecting surface, and

the second lens portion of the exit portion is formed on a second recessed portion formed in the reflecting surface so as to prevent the second lens portion from projecting beyond the reflecting surface.

12. The ATR prism according to claim 11 , wherein

the first recessed portion comprises a positioning portion configured to allow positioning of a light source configured to radiate the light to the incident portion, and

the second recessed portion comprises a positioning portion configured to allow positioning of a light-receiving part configured to receive the light from the exit portion.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2022
From: TOMITA, MITSURU
To: NIPPON ELECTRIC GLASS CO., LTD.
Reel/Frame 060956/0986 →
Priority Claims (1)
JP 2021-148793 · Sep 13, 2021 · national
Continuity (1)
Related Publication 20230079647A1 · Mar 16, 2023
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