IP Library Granted Patent US 12,607,621
Granted Patent B2
US 12,607,621 · App. 18/835,752 · Granted Apr 21, 2026

Non-invasive substance analyzer

Inventors: Shusaku Hayashi (Tokyo, JP); Koichi Akiyama (Tokyo, JP); Yuki Tsuda (Tokyo, JP)
Assignee: MITSUBISHI ELECTRIC CORPORATION
G01N33/49G01N21/1717G01N21/3577G01N21/41G01N2021/1731G01N2201/088
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Quick Facts
Patent No.
US 12,607,621
App. No.
18/835,752
Granted
Apr 21, 2026
Kind
B2
Abstract

The non-invasive substance analyzer includes an optical waveguide circuit, a probe light source, and a light intensity detector. The optical waveguide circuit has a sample mounting region. The probe light source emits probe light. The optical waveguide circuit includes a first optical waveguide to which the probe light is incident, a waveguide-type ring resonator, and a second optical waveguide. The light intensity detector detects an intensity of first light which is a part of the probe light and is optically coupled to the second optical waveguide.

Claims (74)

1 . A non-embedded type non-invasive substance analyzer for analyzing substance included in a human body without being embedded in the human body to check a blood glucose level, the non-invasive substance analyzer comprising:

an optical waveguide circuit having a first main surface including a sample mounting region and a second main surface opposite to the first main surface;

an excitation light source that emits excitation light toward a sample mounted on the sample mounting region from a vertical direction with respect to the sample mounting region;

a probe light source that emits probe light;

a first light intensity detector; and

a second light intensity detector,

wherein the optical waveguide circuit includes a first optical waveguide to which the probe light is incident from one end side to the other end side, a waveguide-type ring resonator which is optically coupled to the first optical waveguide, and a second optical waveguide which is optically coupled to the waveguide-type ring resonator and in which the probe light via the waveguide-type ring resonator propagates from the other end side to the one end side,

in a plan view of the first main surface, the sample mounting region to which the excitation light is emitted from the excitation light source in the vertical direction is located inside the waveguide-type ring resonator,

the probe light source and the first light intensity detector are located on the one end side with respect to the sample mounting region and the waveguide-type ring resonator,

the first light intensity detector is optically coupled to the second optical waveguide on the one end side and detects an intensity of first light which is a part of the probe light and is optically coupled to the second optical waveguide, and

the second light intensity detector is optically coupled to the first optical waveguide, and detects an intensity of second light which is a part of the probe light and propagates in the first optical waveguide without being coupled to the waveguide-type ring resonator.

2 . The non-invasive substance analyzer according to claim 1 further comprising:

a substance analysis unit that analyzes a substance in the sample or on a surface of the sample based on a difference between the intensity of the first light and the intensity of the second light.

3 . The non-invasive substance analyzer according to claim 1 further comprising:

a second thermoregulator that regulates a temperature of the probe light source.

4 . The non-invasive substance analyzer according to claim 1 , wherein

a through hole that extends from the sample mounting region to the second main surface is provided in the optical waveguide circuit, and

the excitation light passes through the through hole, and is irradiated on the sample.

5 . The non-invasive substance analyzer according to claim 4 further comprising:

an optical medium that transmits the excitation light,

wherein the optical medium closes the through hole, and

the excitation light passes through the optical medium, and is irradiated on the sample.

6 . The non-invasive substance analyzer according to claim 5 , wherein

the optical medium extends from the sample mounting region to a height of an inner side surface of the waveguide-type ring resonator, and

a portion of the through hole that is closer to the second main surface than the optical medium is a cavity that is not filled with the optical medium.

7 . The non-invasive substance analyzer according to claim 4 further comprising:

a first optical medium that transmits the excitation light; and

a second optical medium that transmits the excitation light,

wherein the first optical medium closes the through hole,

the second optical medium closes the through hole, has a higher thermal conductivity than the first optical medium, and is disposed closer to the sample mounting region than the first optical medium, and

the excitation light passes through the first optical medium and the second optical medium, and is irradiated on the sample.

8 . The non-invasive substance analyzer according to claim 7 , wherein

the second optical medium extends from the sample mounting region to a height of an inner side surface of the waveguide-type ring resonator.

9 . The non-invasive substance analyzer according to claim 7 , wherein

the second optical medium extends from the sample mounting region to a height of a lower surface of the waveguide-type ring resonator, and

the lower surface of the waveguide-type ring resonator faces the second main surface.

10 . The non-invasive substance analyzer according to claim 1 , wherein

the optical waveguide circuit includes a first termination portion,

the second optical waveguide includes a first end optically coupled to the first light intensity detector and a second end opposite to the first end, and

the first termination portion is provided at the second end of the second optical waveguide, and scatters or absorbs the probe light.

11 . The non-invasive substance analyzer according to claim 1 , wherein

the waveguide-type ring resonator is a silicon waveguide.

12 . A non-embedded type non-invasive substance analyzer for analyzing substance included in a human body without being embedded in the human body to check a blood glucose level, the non-invasive substance analyzer comprising:

an optical waveguide circuit having a first main surface including a sample mounting region and a second main surface opposite to the first main surface;

an excitation light source that emits excitation light toward a sample mounted on the sample mounting region from a vertical direction with respect to the sample mounting region;

a probe light source that emits probe light;

a first light intensity detector; and

a first thermoregulator,

wherein the optical waveguide circuit includes a first optical waveguide to which the probe light is incident from one end side to the other end side, a waveguide-type ring resonator which is optically coupled to the first optical waveguide, and a second optical waveguide which is optically coupled to the waveguide-type ring resonator and in which the probe light via the waveguide-type ring resonator propagates from the other end side to the one end side,

in a plan view of the first main surface, the sample mounting region to which the excitation light is emitted from the excitation light source in the vertical direction is located inside the waveguide-type ring resonator,

the probe light source and the first light intensity detector are located on the one end side with respect to the sample mounting region and the waveguide-type ring resonator,

the first light intensity detector is optically coupled to the second optical waveguide on the one end side and detects an intensity of first light which is a part of the probe light and is optically coupled to the second optical waveguide, and

the first thermoregulator regulates a temperature of the waveguide-type ring resonator.

13 . The non-invasive substance analyzer according to claim 12 , wherein

in a plan view of the first main surface, a length of the first thermoregulator in a circumferential direction of the waveguide-type ring resonator is 50% or less of a length of the waveguide-type ring resonator in the circumferential direction.

14 . The non-invasive substance analyzer according to claim 12 further comprising:

a substance analysis unit that analyzes a substance in the sample or on a surface of the sample based on the intensity of the first light.

15 . The non-invasive substance analyzer according to claim 12 , wherein

the optical waveguide circuit includes a first termination portion and a second termination portion,

the second optical waveguide includes a first end optically coupled to the first light intensity detector and a second end opposite the first end,

the first termination portion is provided at the second end of the second optical waveguide, and scatters or absorbs the probe light,

the first optical waveguide includes a third end to which the probe light is incident and a fourth end opposite to the third end, and

the second termination portion is provided at the fourth end of the first optical waveguide, and scatters or absorbs the probe light.

16 . A non-embedded type non-invasive substance analyzer for analyzing substance included in a human body without being embedded in the human body to check a blood glucose level, the non-invasive substance analyzer comprising:

an optical waveguide circuit having a first main surface including a sample mounting region and a second main surface opposite to the first main surface;

an excitation light source that emits excitation light toward a sample mounted on the sample mounting region from a vertical direction with respect to the sample mounting region;

a probe light source that emits probe light; and

a first light intensity detector,

wherein the optical waveguide circuit includes a first optical waveguide to which the probe light is incident from one end side to the other end side, a waveguide-type ring resonator which is optically coupled to the first optical waveguide, a second optical waveguide which is optically coupled to the waveguide-type ring resonator and in which the probe light via the waveguide-type ring resonator propagates from the other end side to the one end side, a substrate which supports the waveguide-type ring resonator, and a thermal insulation member which has a smaller thermal conductivity than the substrate,

in a plan view of the first main surface, the sample mounting region to which the excitation light is emitted from the excitation light source in the vertical direction is located inside the waveguide-type ring resonator,

a recess that overlaps with the waveguide-type ring resonator in a plan view of the first main surface is provided on a surface of the substrate facing the waveguide-type ring resonator,

the recess is filled with the thermal insulation member,

the probe light source and the first light intensity detector are located on the one end side with respect to the sample mounting region and the waveguide-type ring resonator, and

the first light intensity detector is optically coupled to the second optical waveguide on the one end side and detects an intensity of first light which is a part of the probe light and is optically coupled to the second optical waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2024
From: HAYASHI, SHUSAKU; AKIYAMA, KOICHI; TSUDA, YUKI
To: MITSUBISHI ELECTRIC CORPORATION
Reel/Frame 068180/0884 →
Continuity (1)
Related Publication 20250137992A1 · May 1, 2025
References Cited (20)
US 6668006B1 · Margalit et al. · 2003 [cited by applicant]
US 11452469B1 · Aiyer · 2022 [cited by examiner]
US 11624615B2 · Paniccia · 2023 [cited by examiner]
US 20130130254A1 · Scherer et al. · 2013 [cited by applicant]
US 20170146455A1 · Mantele et al. · 2017 [cited by applicant]
US 20210401291A1 · Schriek et al. · 2021 [cited by applicant]
US 20220187075A1 · Paniccia · 2022 [cited by examiner]
JP 2003527625A · 2003 [cited by applicant]
JP 2004325128A · 2004 [cited by applicant]
JP 2012108095A · 2012 [cited by applicant]
JP 2015502539A · 2015 [cited by applicant]
JP 2017519214A · 2017 [cited by applicant]
JP 2022506275A · 2022 [cited by applicant]
International Search Report and Written Opinion mailed on Apr. 19, 2022, received for PCT Application PCT/JP2022/006341, filed on Feb. 17, 2022, 12 pages including English Translation. [cited by applicant]
Singha et al., “On-chip Photonic Temperature Sensor Using Micro Ring Resonator”, 2018 Fifteenth International Conference on Wireless and Optical Communications Networks (WOCN), Feb. 2-4, 2018, 5 pages. [cited by applicant]
Notice of Reasons for Refusal mailed on Aug. 23, 2022, received for JP Application 2022-540426, 11 pages including English Translation. [cited by applicant]
Notice of Reasons for Refusal mailed on Nov. 1, 2022, received for JP Application 2022-540426, 11 pages including English Translation. [cited by applicant]
Decision of Refusal mailed on Jan. 24, 2023, received for JP Application 2022-540426, 09 pages including English Translation. [cited by applicant]
Reconsideration Report by Examiner before Appeal mailed on May 26, 2023, received for JP Application 2022-540426, 09 pages including English Translation. [cited by applicant]
Notice of Reasons for Refusal mailed on Jan. 23, 2024, received for JP Application 2022-540426, 35 pages including English Translation. [cited by applicant]