IP Library Granted Patent US 12,352,926
Granted Patent B2
US 12,352,926 · App. 16/955,496 · Granted Jul 8, 2025

Concave-convex structure, optical member, and electronic apparatus

Inventors: Masanao Kikuchi (Tokyo, JP); Hiroshi Tazawa (Tokyo, JP); Kazuya Hayashibe (Tokyo, JP)
Assignee: DEXERIALS CORPORATION
G02B1/118G02B1/04
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Quick Facts
Patent No.
US 12,352,926
App. No.
16/955,496
Granted
Jul 8, 2025
Kind
B2
Abstract

Provided are a concave-convex structure including more complicated concave-convex structure, an optical member, and an electronic apparatus. The concave-convex structure includes a plurality of group portions each including a plurality of concavities or convexities provided in a surface of a base material, in which average widths of areas occupied by the concavities or convexities at the surface of the base material are smaller than or equal to a wavelength belonging to a visible light band.

Claims (31)

1. A concave-convex structure comprising:

a plurality of group portions each including a plurality of convexities provided in a surface of a base material, wherein average widths of areas occupied by the convexities at the surface of the base material are smaller than or equal to a wavelength belonging to a visible light band,

wherein heights of the convexities in each of the group portions increase gradually toward a center of the group portion, and each of the group portions is formed as a convex lens-like structure as a whole,

wherein each of the group portions is configured to function as a single microlens, a plurality of the convexities that constitute each of the group portions are configured to function as a moth-eye structure that has an anti-reflection function, and an entire concave-convex structure consisting of a plurality of the group portions is configured to function as a microlens array having the anti-reflection function by means of the moth-eye structure,

wherein a plurality of the group portions are arranged spaced apart from each other on the surface of the base material with a flat surface therebetween, and a spacing between adjacent group portions is wider than a spacing between adjacent convexities within each of the group portions.

2. The concave-convex structure according to claim 1 , wherein

an average distance between centers of gravity of adjacent ones of the concavities or convexities in each of the group portions is more than or equal to 0.65 (x1/2+x2/2) and less than or equal to 2.0 (x1/2+x2/2), where x1 and x2 respectively represent the average widths of the areas occupied by the adjacent ones of the concavities or convexities at the surface of the base material.

3. The concave-convex structure according to claim 1 , wherein

average widths of the group portions as a whole are more than or equal to 0.2 μm.

4. The concave-convex structure according to claim 1 , wherein

the areas occupied by the concavities or convexities at the surface of the base material have a generally circular shape.

5. The concave-convex structure according to claim 1 , wherein

in each of the group portions, each of lengths of the concavities or convexities in a vertical direction with respect to the surface of the base material belongs to any of at least two or more groups having different central values.

6. The concave-convex structure according to claim 1 , wherein

in each of the group portions, each of the average widths of the areas occupied by the concavities or convexities at the surface of the base material belongs to any of at least two or more groups having different central values.

7. The concave-convex structure according to claim 1 , wherein

lengths of the concavities or convexities in a vertical direction with respect to the surface of the base material are changed gradually within each of the group portions.

8. The concave-convex structure according to claim 1 , wherein

the average widths of the areas occupied by the concavities or convexities at the surface of the base material are changed gradually within each of the group portions.

9. The concave-convex structure according to claim 1 , wherein

the respective group portions are laid out regularly.

10. The concave-convex structure according to claim 1 , wherein

respective group portions are laid out irregularly.

11. The concave-convex structure according to claim 1 , wherein

in each of the group portions, respective concavities or convexities are provided in a closest-packed arrangement.

12. An optical member, wherein

the concave-convex structure as defined in claim 1 is used, or a transferred object obtained by transferring the concave-convex structure is used.

13. An electronic apparatus, wherein

the concave-convex structure as defined in claim 1 is used, or a transferred object obtained by transferring the concave-convex structure is used.

14. The concave-convex structure according to claim 1 , wherein a flat surface is provided between the adjacent group portions.

15. The concave-convex structure according to claim 14 , wherein the flat surface has a width between adjacent group portions larger than a wavelength belonging to the visible light band.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 18, 2020
From: KIKUCHI, MASANAO; TAZAWA, HIROSHI; HAYASHIBE, KAZUYA
To: DEXERIALS CORPORATION
Reel/Frame 052982/0420 →
Priority Claims (1)
JP 2017-249061 · Dec 26, 2017 · national
Continuity (1)
Related Publication 20200319377A1 · Oct 8, 2020
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