OPTICAL DIFFUSION MODULE

Abstract
An optical diffusion structure includes an optical diffusion structure comprising a plurality of convex portions and a plurality of concave portions. Each convex portion is adjacent to a plurality of concave portions and each concave portion is adjacent to a plurality of convex portions. The convex portions, the concave portions and each junction of the convex and concave portions have a curvature different from 0. The optical diffusion structure further includes a diffusion plate having a first surface, wherein the optical diffusion structure is formed on the first surface, and the convex portions are arranged in a two dimensional array along a first direction and a second direction, and the concave portions are arranged in a two dimensional array along a third direction and a fourth direction.
Description

BRIEF DESCRIPTION OF DRAWINGS

The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:



FIG. 1
a is a schematic view of an optical diffusion structure manufactured by laser dragging; and



FIG. 1
b depicts a mask used in the laser dragging method and an optical diffusion structure manufactured by the mask;



FIG. 2
a depicts an application of the optical diffusion structure of FIG. 1b;



FIG. 2
b is an intensity diagram of the optical diffusion structure of FIG. 2a;



FIG. 2
c depicts a blurred structure formed on the back of the optical diffusion structure;



FIG. 3 is a schematic view of a method of forming an optical diffusion structure of the invention;



FIG. 4 depicts an optical diffusion structure manufactured by the method of FIG. 3;



FIG. 5 is an intensity diagram of an embodiment of the optical diffusion structure of the invention;



FIG. 6 is an intensity diagram of another embodiment of the optical diffusion structure of the invention;



FIG. 7 is an intensity diagram of another embodiment of the optical diffusion structure of the invention;



FIG. 8 is an intensity diagram of another embodiment of the optical diffusion structure of the invention;



FIG. 9 depicts the optical diffusion structure of the invention used with a diffusion sheet;



FIG. 10 depicts the optical diffusion structure of the invention used with a grained structure;



FIG. 11 depicts the optical diffusion structure of the invention manufactured by a polymer with optical diffusion effect;





DETAILED DESCRIPTION OF INVENTION

The invention discloses a two-dimensional optical diffusion structure for two-dimensional light diffusion. The optical diffusion structure of the invention is formed by a laser dragging method.


Referring to FIG. 3, a mask (not shown) is moved along a first direction L1, and laser beams passes through the mask to form a plurality of first grooves 520 on a substrate S. The mask is moved along a second direction L2 with laser beams passing therethrough to form a plurality of second grooves 540 on the substrate S. The first grooves 520 and the second grooves 540 constitute an optical diffusion structure 500 similar to stationary waves.



FIG. 4 depicts an optical diffusion module 600 formed by laser dragging shown in FIG. 3. The optical diffusion structure 600 comprises a diffusion plate 620 and an optical diffusion structure 640 formed on the diffusion plate 620. The optical diffusion structure 640 comprises a plurality of convex portions 660 and a plurality of concave portions 680. The convex portions 660 are arranged in a two-dimensional array along the first and second directions. Similarly, the concave portions 680 are arranged in a two-dimensional array along the first and second directions. The convex portions 660 and the concave portions. 690 are arranged alternatingly to form a pattern similar to stationary waves. In this embodiment, each convex portion 660 is adjacent to four concave portions 680, and each concave portion 680 is also adjacent to four convex portions 660. The mask is designed in such a manner that curvatures at the convex portions 660, the concave portions 680 and each junction of the convex portion 660 and concave portion 680 are different from 0. Along the first direction L1, the distance between two adjacent convex portions 660 is D1, and the distance between two adjacent concave portions 680 is D3. Along the second direction L2, the distance between two adjacent convex portions 660 is D2, and the distance between two adjacent concave portions 680 is D4.


Although D1 is equal to D2, and D3 is equal to D4 in FIG. 4, D1, D2, D3 and D4 may different. Other embodiments are described by intensity diagrams as follows.



FIG. 5 is an intensity diagram for another embodiment of the optical diffusion structure of the invention. The stripes in FIG. 5 represent bright regions where light is condensed. Distances D1 between any two adjacent convex portions 660 along the first direction L1 are the same. Distances D3 between any two adjacent concave portions 680 along the first direction L1 are the same. Distances D2 between any two adjacent convex portions 660 along the second direction L2 are the same. Distances D4 between any two adjacent concave portions 680 along the second direction L2 are the same.



FIG. 6 is an intensity diagram for another embodiment of the optical diffusion structure of the invention. Distances D1 between any two adjacent convex portions 660 along the first direction L1 are the same. Distances D3 between any two adjacent concave portions 680 along the first direction L1 are the same. Distances D2 between any two adjacent convex portions 660 along the second direction L2 are different. Distances D4 between any two adjacent concave portions 680 along the second direction L2 are different. D2 and D4 increase gradually from a center of the optical diffusion structure 640 to lateral sides thereof.



FIG. 7 is an intensity diagram for another embodiment of the optical diffusion structure of the invention. Distances D1 between any two adjacent convex portions 660 along the first direction L1 are the same. Distances D3 between any two adjacent concave portions 680 along the first direction L1 are the same. Distances D2 between any two adjacent convex portions 660 along the second direction L2 are different. Distances D4 between any two adjacent concave portions 680 along the second direction L2 are different. D2 and D4 decrease gradually from a center to lateral sides of the optical diffusion structure 640.



FIG. 8 is an intensity diagram for another embodiment of the optical diffusion structure of the invention. Distances D1 between any two adjacent convex portions 660 along the first direction L1 are different. Distances D3 between any two adjacent concave portions 680 along the first direction L1 are different. D1 and D3 increase gradually from a center to lateral sides of the optical diffusion structure 640. Distances D2 between any two adjacent convex portions 660 along the second direction L2 are different. Distances D4 between any two adjacent concave portions 680 along the second direction L2 are different. D2 and D4 increase gradually from a center to lateral sides of the optical diffusion structure 640.


The embodiments above are examples for description, but the invention is not limited thereto. For example, distances D1 between two adjacent convex portions 660 are different along the first direction L1, but Distances D3 between any two adjacent concave portions 680 along the first direction L1 are the same.


In addition, although the first direction L1 and the second direction L2 in the described embodiments are perpendicular, the first direction L1 and the second direction L2 can also be other than perpendicular.


The diffusion plate 620 can be combined with a typical diffusion plate 50 to constitute an optical diffusion module 700 shown in FIG. 9. Number 30 is a LED array. In FIG. 10, an optical diffusion module 800 comprises a grained structure or a blurred structure formed on the bottom (second surface) 622 of the diffusion plate 620 (the optical diffusion structure 600 is formed on the first surface 621) to enhance light diffusion. In FIG. 11, an optical diffusion module 900 comprises the diffusion plate 620 of a polymer with light diffusion characteristics.


While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.

Claims
  • 1. An optical diffusion module, comprising: an optical diffusion structure comprising a plurality of convex portions and a plurality of concave portions, wherein each convex portion is adjacent to a plurality of concave portions and each concave portion is adjacent to a plurality of convex portions, and the convex portions, the concave portions and each junction of the convex and concave portions have a curvature different from 0; anda diffusion plate having a first surface, wherein the optical diffusion structure is formed on the first surface, and the convex portions are arranged in a two dimensional array along a first direction and a second direction, and the concave portions are arranged in a two dimensional array along a third direction and a fourth direction.
  • 2. The optical diffusion module as claimed in claim 1, wherein distances from one convex portion to other convex portions, which are adjacent to the one convex portion, are the same along the first direction.
  • 3. The optical diffusion module as claimed in claim 2, wherein distances from one convex portion to other convex portions, which are adjacent to the one convex portion, are the same along the second direction.
  • 4. The optical diffusion module as claimed in claim 3, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are the same along the first direction.
  • 5. The optical diffusion module as claimed in claim 4, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are the same along the second direction.
  • 6. The optical diffusion module as claimed in claim 1, wherein distances from one convex portion to other convex portions, which are adjacent to the one convex portion, are different along the second direction.
  • 7. The optical diffusion module as claimed in claim 6, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, decreases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 8. The optical diffusion module as claimed in claim 6, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, increases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 9. The optical diffusion module as claimed in claim 6, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are the same along the first direction.
  • 10. The optical diffusion module as claimed in claim 9, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are different along the second direction.
  • 11. The optical diffusion module as claimed in claim 10, wherein the distance from one concave portion to another concave portion, which is adjacent to the one concave portion, decreases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 12. The optical diffusion module as claimed in claim 10, wherein the distance from one concave portion to another concave portion, which is adjacent to the one concave portion, increases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 13. The optical diffusion module as claimed in claim 1, wherein distances from one convex portion to other convex portions, which are adjacent to the one convex portion, are different along the first direction.
  • 14. The optical diffusion module as claimed in claim 13, wherein distances from one convex portion to other convex portions, which are adjacent to the one convex portion, are different along the second direction.
  • 15. The optical diffusion module as claimed in claim 14, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, decreases from a center to lateral sides of the optical diffusion structure along the first direction.
  • 16. The optical diffusion module as claimed in claim 15, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, decreases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 17. The optical diffusion module as claimed in claim 15, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, increases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 18. The optical diffusion module as claimed in claim 14, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, increases from a center to lateral sides of the optical diffusion structure along the first direction.
  • 19. The optical diffusion module as claimed in claim 18, wherein the distance from one convex portion to another convex portion, which is adjacent to the one convex portion, increases from a center to lateral sides of the optical diffusion structure along the second direction.
  • 20. The optical diffusion module as claimed in claim 13, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are different along the first direction.
  • 21. The optical diffusion module as claimed in claim 20, wherein distances from one concave portion to other concave portions, which are adjacent to the one concave portion, are different along the second direction.
  • 22. The optical diffusion module as claimed in claim 1 further comprising a diffusion layer, wherein light from a light source passes through the diffusion layer and the diffusion plate sequentially.
  • 23. The optical diffusion module as claimed in claim 1, wherein the diffusion plate further has a second surface on which a grained structure is formed, and light from a light source passes through the second surface and the first surface sequentially.
  • 24. The optical diffusion module as claimed in claim 1, wherein the diffusion plate further has a second surface on which a blurred structure is formed, and light from a light source passes through the second surface and the first surface sequentially.
  • 25. The optical diffusion module as claimed in claim 1, wherein the diffusion plate is made of polymer with optical diffusion effect.
  • 26. An optical diffusion module, comprising: an optical diffusion structure comprising a plurality of convex portions and a plurality of concave portions, wherein each convex portion is adjacent to a plurality of concave portions and each concave portion is adjacent to a plurality of convex portions, and the convex portions, the concave portions and each junction of the convex and concave portions have a curvature different from 0; anda diffusion sheet on which the diffusion structure is formed, wherein the convex and concave portions of the diffusion structure extend along a first direction and are arranged alternatingly along a second direction, and each convex portion is curved and has a first curved surface having a first width along the second direction, which is varied along the second direction, and each concave portion is curved and has a second curved surface having a second width along the second direction, which is varied along the second direction.
  • 27. The optical diffusion module as claimed in claim 26, wherein the first width decreases from a center to lateral sides of the first diffusion structure.
  • 28. The optical diffusion module as claimed in claim 27, wherein the second width decreases from a center to lateral sides of the first diffusion structure.
  • 29. The optical diffusion module as claimed in claim 26, wherein the first width increases from a center to lateral sides of the first diffusion structure.
  • 30. The optical diffusion module as claimed in claim 29, wherein the second width increases from a center to lateral sides of the first diffusion structure.
  • 31. The optical diffusion module as claimed in claim 29 further comprising a diffusion layer, wherein the light from the light source passes through the diffusion layer and the diffusion structure sequentially.
  • 32. A method of forming an optical diffusion structure, comprising: providing a substrate;providing a first mask having a plurality of first holes arranged in a array;providing a second mask having a plurality of second holes arranged in an array;providing an energy beam;placing the first mask between the energy beam and the substrate;moving the first mask or the substrate along a first direction;placing the second mask between the energy beam and the substrate;moving the second mask or the substrate along a second direction to form a two dimensional array of convex portions and concave portions on the substrate, wherein each convex portion is adjacent to a plurality of concave portions and each concave portion is adjacent to a plurality of convex portions.
  • 33. The method as claimed in claim 32, wherein the first direction is perpendicular to the second direction.
  • 34. The method as claimed in claim 32, wherein distances between one first hole to other first holes, which are adjacent to the one first hole, are the same.
  • 35. The method as claimed in claim 34, wherein distances between one second hole to other second holes, which are adjacent to the one second hole, are the same.
  • 36. The method as claimed in claim 34, wherein distances between one second hole to other second holes, which are adjacent to the one second hole, are different.
  • 37. The method as claimed in claim 32, wherein distances between one first hole to other first holes, which are adjacent to the one first hole, are different, and distances between one second hole to other second holes, which are adjacent to the one second hole, are different.
  • 38. A method of forming an optical diffusion structure, comprising: providing a substrate;providing a mask having a plurality of holes arranged in an array;providing an energy beam;placing the mask between the energy beam and the substrate;moving the mask or the substrate along a first direction; andmoving the mask or the substrate along a second direction to form a two dimensional array of convex portions and concave portions on the substrate, wherein each convex portion is adjacent to a plurality of concave portions and each concave portion is adjacent to a plurality of convex portions.
  • 39. The method as claimed in claim 38, wherein the first direction is perpendicular to the second direction.
Priority Claims (1)
Number Date Country Kind
TW95132005 Aug 2006 TW national