IP Library › Granted Patent US 12,606,931
Granted Patent B2
US 12,606,931 · App. 18/009,726 · Granted Apr 21, 2026

Synthetic single crystal diamond and method for manufacturing same

Inventors: Hitoshi Sumiya (Osaka, JP); Jin Hwa Lee (Osaka, JP); Minori Teramoto (Osaka, JP)
Assignee: Sumitomo Electric Industries, Ltd.
C30B29/04B01J3/065C30B9/10C30B33/04B01J2203/0655
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Quick Facts
Patent No.
US 12,606,931
App. No.
18/009,726
Granted
Apr 21, 2026
Kind
B2
Abstract

A synthetic single crystal diamond containing 100 ppm or more and 1500 ppm or less of nitrogen atoms, in which the synthetic single crystal diamond contains aggregates each composed of one vacancy and two to four nitrogen atoms present adjacent to the vacancy, a ratio b/a of a length b of a short diagonal line to a length a of a long diagonal line of diagonal lines of a Knoop indentation in a <110> direction in a {001} plane of the synthetic single crystal diamond is 0.08 or less, and the Knoop indentation is formed by measuring Knoop hardness in the <100> direction in the {001} plane of the synthetic single crystal diamond according to JIS Z 2251: 2009 under conditions of a temperature of 23° C.±5° C. and a test load of 4.9 N.

Claims (15)

1 . A synthetic single crystal diamond comprising 100 ppm or more and 1500 ppm or less of nitrogen atoms,

wherein the synthetic single crystal diamond contains aggregates each composed of one vacancy and two to four nitrogen atoms present adjacent to the vacancy,

wherein a ratio b/a of a length b of a short diagonal line to a length a of a long diagonal line of diagonal lines of a Knoop indentation in a <110> direction in a {001} plane of the synthetic single crystal diamond is 0.08 or less, and

wherein the Knoop indentation is formed by measuring Knoop hardness in the <100> direction in the {001} plane of the synthetic single crystal diamond according to JIS Z 2251:2009 under conditions of a temperature of 23° C.±5° C. and a test load of 4.9 N,

wherein the synthetic single crystal diamond has a Knoop hardness of greater than 130 GPa in a <100> direction in a {001} plane.

2 . The synthetic single crystal diamond according to claim 1 , wherein, in an infrared absorption spectrum of the synthetic single crystal diamond, an absorption peak is present in the wave number range of 1175±2 cm −1 .

3 . The synthetic single crystal diamond according to claim 1 , wherein, in a fluorescent spectrum of the synthetic single crystal diamond, a luminescence peak is present in one or both of the fluorescence wavelength range of 503±2 nm and the fluorescence wavelength range of 510 nm or more and 530 nm or less.

4 . The synthetic single crystal diamond according to claim 1 , wherein, in a fluorescent spectrum of the synthetic single crystal diamond, a luminescence peak is present in one or both of the fluorescence wavelength range of 415±2 nm and the fluorescence wavelength range of 420 nm or more and 470 nm or less.

5 . The synthetic single crystal diamond according to claim 1 , wherein, in an infrared absorption spectrum of the synthetic single crystal diamond, an absorption peak is present in the wave number range of 1282±2 cm −1 .

6 . The synthetic single crystal diamond according to claim 1 , wherein, in an infrared absorption spectrum of the synthetic single crystal diamond, an absorption peak is present in the wave number range of 1370 cm −1 or more and 1385 cm −1 or less.

7 . The synthetic single crystal diamond according to claim 1 , wherein the synthetic single crystal diamond has a cracking load of 17 N or more in a breaking strength test in which a spherical diamond indenter having a tip radius of 50 μm is pressed against a surface of the synthetic single crystal diamond at a loading speed of 100 N/min.

8 . A method for manufacturing the synthetic single crystal diamond according to claim 1 , the method comprising:

a first step of synthesizing a diamond single crystal containing nitrogen atoms at a concentration of 100 ppm or more and 1500 ppm or less based on atom numbers by a temperature difference process using a solvent metal;

a second step of irradiating the diamond single crystal with one or both of an electron beam and a particle beam with an energy of 100 MGy or more and 1000 MGy or less; and

a third step of obtaining a synthetic single crystal diamond by applying a pressure of 5 GPa or more and a temperature of 2300° C. or more and 2600° C. or less for one minute or more and 3600 minutes or less to the diamond single crystal after the second step.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2022
From: SUMIYA, HITOSHI; LEE, JIN HWA; TERAMOTO, MINORI
To: SUMITOMO ELECTRIC INDUSTRIES, LTD.
Reel/Frame 062050/0096 →
Priority Claims (1)
JP 2020-113054 · Jun 30, 2020 · national
Continuity (1)
Related Publication 20230220584A1 · Jul 13, 2023
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