The present invention relates to a backlight source and, more particularly, to a backlight source having a diffractive structure.
A backlight source is commonly used for providing illumination to a display panel such as a liquid-crystal display (LCD) panel. In some backlight sources, color light-emitting diodes are arranged in a certain pattern for illuminating the LCD panel from the backside thereof.
The present invention makes use of the selective diffractive properties of diffractive elements to direct different color light components in a light guide out of one of light guide surfaces. The diffracted light components from the light guide surface form a broad light beam of substantial uniformity for illuminating the backside of a display device, such as a liquid crystal display panel. According to various embodiments of the present invention, a grating structure having an elongated body is used to receive a laser light beam through one end of the elongated body. Fan-out gratings along the elongated body are used to diffract the received laser beam in order to form a light sheet out of a side edge of the elongated body. By placing the grating structure adjacent to one edge of the light guide, the light sheet is thus introduced into the light guide. If only a light sheet of one color is introduced into the light guide, then the diffracted light components out of the light guide surface form a broad light beam of a single color. If two or more light sheets of different colors are introduced into the light guides, then the diffracted light components out of the light guide surface form a broad light beam of multiple colors. If the diffracted light components out of the light guide surface contain three primary color components of red, green and blue in proper proportions, for example, then a broad light beam of white color can be achieved.
According to one embodiment of the present invention, one light guide is used to receive three light sheets in three primary colors in order to form a broad white beam. According to another embodiment of the present invention, two or more light sheets are used to receive light sheets of different colors.
Thus, the first aspect of the present invention is an apparatus or a backlight source, which comprises:
a plate made substantially of an optical material, the plate comprising:
The apparatus further comprises:
one or more grating structures configured for receiving one or more light beams for providing the light components through said one or more edge surfaces, wherein each of said one or more grating structures is configured for receiving a light beam for providing the light components in form of a light sheet. Each of said one or more grating structures comprises an elongated body having at least one side edge along a longitudinal axis and at least one end edge, and wherein the light beam is received through the end edge and the light sheet is provided through the side edge.
According to various embodiment of the present invention, the optical material is chosen such that the light components are guided between the first surface and the second surface by total internal reflection.
According to various embodiments of the present invention, the light components comprise a first color component, a second color component and a third color component, and the light diffractive elements comprise first diffractive elements configured for diffracting the first color component, second diffractive elements configured for diffracting the second color component, and third diffractive elements configured for diffracting the third color component.
According to one embodiment of the present invention, one plate is used as a light guide having a plurality of diffractive elements distributed over one of the light guide surfaces, wherein all of the first, second and third diffractive elements, and wherein different side edges of the plate are used to receive a plurality of light sheets of different colors.
According to another embodiment of the present invention, two or more plates are used as light guides, and each light guide is used to receive a light sheet of a single color. The diffractive elements on the surface of each light guide are configured to diffract the light components of the received light sheet. As such, the diffracted light components out of the surface each light guide form a broad light beam of a different single color. When the plates are stacked on one another, the combination of three broad light beams of three different colors form a broad white light beam.
The aspect of the present invention is a method of realizing a backlight source. The method comprises:
providing a plate made substantially of an optical material, the plate comprising:
arranging a plurality of light diffractive elements on the first surface for directing part of the light components out of the first surface by diffraction.
The method further comprises:
arranging one or more grating structures adjacent to said one or more edged surfaces of the plate, the grating structures configured for receiving one or more light beams for providing the light components through said one or more edge surfaces, wherein each of said one or more grating structures is configured for receiving a light beam for providing the light components in form of a light sheet, and wherein each of said one or more grating structures comprises an elongated body having at least one side edge along a longitudinal axis and at least one end edge, and wherein the light beam is received through the end edge and the light sheet is provided through the side edge.
According to the present invention, the optical material is chosen such that the light components are guided between the first surface and the second surface by total internal reflection.
According to one embodiment of the present invention, the light components comprise a first color component, a second color component and a third color component, and wherein the light diffractive elements comprise first diffractive elements configured for diffracting the first color component, second diffractive elements configured for diffracting the second color component, and third diffractive elements configured for diffracting the third color component.
The present invention will become apparent upon reading the description taken in conjunction with
As known in the art, a backlight source is placed on the backside of a display panel to provide illumination to the display panel. As shown in
On the surface 32 of the backlight plate 30, a plurality of diffractive elements 52, 54 and 56 distributed throughout the surface 32. The diffractive elements 52 are configured to diffract more effectively a red light beam, the diffractive elements 54 are configured to diffract more effectively a blue light beam, and the diffractive elements 56 are configured to diffract more effectively a green light beam. Preferably, the diffractive elements 52, 54 and 56 are arranged in an array, such as a delta array, as shown in
As an example, the light beam 92 is a red laser beam and the diffracted light 112 from the diffractive elements 52 forms a red light beam away from the first surface 32; the light beam 94 is a blue laser beam and the diffracted light 114 from the diffractive elements 54 forms a blue light beam away from the first surface 32; and the light beam 96 is a green laser beam and the diffracted light 112 from the diffractive elements 56 forms a green light beam away from the first surface 32. As a result, a broad white light beam 100 is formed. This broad white light beam can be used to illuminate a display panel from the backside of the display panel 10, as shown in
In the above-described example, three light beams 92, 94 and 96 of red, blue and green colors are used to form a white light beam for illumination. It should be noted that, the color of the light beams and the number of the light beams can be different depending on the application. For example, if it is desirable to form a broad light beam of a single color for illumination, it is possible to use one, two or more laser beams of the same color as the light source. Accordingly, one, two or more light directing structures with fan-out gratings configured for forming one, two or more light sheets, and all the diffractive elements are configured for diffracting light of that single color. If it is desirable to provide a broad light beam composed of two primary colors such as red and blue, it is possible to use one or two red light beams 92 and one or two blue light beams 94 to form a number of light sheets 102 and 104. It is more effective that the diffractive elements on the first surface 32 comprise only diffractive elements 52 and 54. In some applications where a broad beam of an ultraviolet wavelength is desirable, it is possible to fabricate on the first surface a plurality of diffractive elements configured to diffract that ultraviolet wavelength. Likewise, diffractive elements configured to diffract infrared can be used to form a broad infrared beam out of the first surface 32 of the plate 30, for example.
In another embodiment of the present invention, two or more backlight plates are stacked one on top another to form a single backlight source, as shown in
Each of the diffractive structures 72, 74 and 76 can be an elongated body made of an optical material. For example, the diffractive structure 72 has an elongated body with at least one side edge 73 along a longitudinal axis and at least one end edge 71 so that the light beam 92 from the laser 82 can be received through the end edge 71 and the light sheet 102 is provided through the side edge 73, as shown in
It should be noted that diffractive elements 52, 54 and 56 on the surface 30 can be holographically produced or otherwise. Likewise, the fan-out gratings in the diffractive structures 72, 74 and 76 can also be holographically produced, for example. The diffractive structures can be replaced by other structures that can produce a light sheet from a laser beam. It should also be noted that the diffractive elements 52, 54 and 56 have been described as being arranged in a delta array in which each different one of the diffractive elements is located in one corner of a triangle, but a different array can also be used to arrange the diffractive elements. For example, the diffractive elements configured for diffracting the color light sheets in R, G and B can be arranged in a rectangular or a square array as shown in
In summary, the present invention is concerned with light guide arranged for receiving light sheets of different colors through its edge surfaces. Diffractive elements are distributed one of the light guide surfaces for diffracting part of the light sheets out of the light guide surface. The diffractive elements include those for diffracting red color, those for diffracting blue color and those for diffracting green colors. Diffracted light of different colors forms a broad light beam of white color. A grating structure having an elongated body is used to receive a laser light beam through one end of the body, and fan-out gratings along the body are used to diffract the received laser beam for forming a light sheet out of a side edge. The grating structure is placed adjacent to one edge of the light guide so as to introduce the light sheet into the light guide
The present invention provides an apparatus which comprises:
a plate made substantially of an optical material, the plate comprising:
According to various embodiments of the present invention, the apparatus further comprises:
one or more grating structures configured for receiving one or more light beams for providing the light components through said one or more edge surfaces.
According to various embodiments of the present invention, the optical material is chosen such that the light components are guided between the first surface and the second surface by total internal reflection, and each of said one or more grating structures is configured for receiving a light beam for providing the light components in form of a light sheet.
According to various embodiments of the present invention, each of said one or more grating structures comprises an elongated body having at least one side edge along a longitudinal axis and at least one end edge, and wherein the light beam is received through the end edge and the light sheet is provided through the side edge.
According to various embodiments of the present invention, the light components comprise a first color component, a second color component and a third color component, and wherein the light diffractive elements comprise first diffractive elements configured for diffracting the first color component, second diffractive elements configured for diffracting the second color component, and third diffractive elements configured for diffracting the third color component.
According to various embodiments of the present invention, the first color component is a red light component, the second color component is a green light component and the third color component is a blue light component.
The present invention also provides a method, which comprises:
providing a plate made substantially of an optical material, the plate comprising:
arranging a plurality of light diffractive elements on the first surface for directing part of the light components out of the first surface by diffraction.
According to various embodiments of the present invention, the method further comprises: arranging one or more grating structures adjacent to said one or more edged surfaces of the plate, the grating structures configured for receiving one or more light beams for providing the light components through said one or more edge surfaces.
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/FI2009/050853 | 10/23/2009 | WO | 00 | 12/8/2011 |
| Number | Date | Country | |
|---|---|---|---|
| 61198816 | Nov 2008 | US |