The present invention belongs to the technical field of display, and particularly relates to a light control plate, a dual-view display panel and a display device.
Dual view is a technique which allows different display contents to be viewed in a left field of view and a right field of view of a same display screen. At present, the dual view is generally realized by a slit grating.
In the existing display products, to realize a larger visual angle, the thickness of a substrate of a display screen needs to be decreased. However, the decrease of the thickness of the substrate will increase the process difficulty, cause the screen to be easily damaged, and reduce the reliability.
The present invention provides a light control plate, a dual-view display panel including the light control plate, and a display device, which realize a large dual-view visual angle without decreasing the thickness of a substrate of a display screen.
According to one aspect of the present invention, there is provided a light control plate, including: a substrate; a grating structure, which is arranged above the substrate and has light-transmitting regions and light-blocking regions arranged alternately; and, an optical device, which is arranged on a boundary of adjacent light-transmitting region and light-blocking region and used for expanding a dual-view visual angle formed by the grating structure.
According to an embodiment of the present invention, the optical device may be a triangular prism, which is arranged in the light-transmitting region and extends to at least partially cover the boundary of the light-transmitting region and the light-blocking region.
According to an embodiment of the present invention, the optical device is an isosceles triangular prism, and a center line of the vertex angle of the isosceles triangular prism coincides with a center line of the light-transmitting region in a column direction.
According to an embodiment of the present invention, a plurality of isosceles triangular prisms may be arranged in the form of an array.
According to an embodiment of the present invention, the refractivity of the optical device may be larger than that of the substrate.
According to an embodiment of the present invention, the optical device may be formed from a resin material.
According to another aspect of the present invention, there is provided a dual-view display panel, including a display screen having a plurality of pixel regions, and a light control plate arranged on a display side of the display screen. The light control plate includes the light control plate according to the present invention, and the optical device of the light control plate corresponds to two adjacent pixel regions of the display screen.
According to an embodiment of the present invention, a black matrix may be arranged between two adjacent pixel regions of the display screen, and a center line of the light-transmitting region of the grating structure of the light control plate in a column direction coincides with a center line of the black matrix in the column direction.
According to an embodiment of the present invention, the width of the optical device of the light control plate in a row direction may be smaller than the width of one of the two pixel regions corresponding to the optical device in the row direction.
According to an embodiment of the present invention, the display screen may be a liquid crystal display screen or an organic light emission display screen.
According to another aspect of the present invention, there is provided a display device, including the dual-view display panel according to the present invention.
In the light control plate, the dual-view display panel and the display device according to the present invention, a larger dual-view visual angle may be realized without decreasing the thickness of a substrate of a display screen.
To make those skilled in the art better understand the technical solutions of the present invention, a light control plate, a dual-view display panel and a display device of the present invention will be further described below in detail in conjunction with specific implementations and the accompanying drawings.
As shown in
As shown in
Referring to
it can be obtained that
Hence, the following calculation formula of the visual angle θ is obtained:
It is assumed that the width P of each of the pixel points is equal to 80 μm, the width B of the black matrix is equal to 10 μm, and the horizontal distance A from an edge of the light-transmitting stripe 11 to an edge of the corresponding black matrix is equal to 5 μm. If the desired visual angle θ is equal to 45°, the following equation may be obtained from the above calculation formula of the visual angle θ:
Then, the following is obtained by solving the above equation: H≈53 μm or 27 μm. In other words, to ensure a certain dual-view visual angle θ (e.g., θ=45°), the vertical distance H from the slit grating to the pixel point needs to be set as 53 μm (or even less). In the display panel, the distance H is essentially, for example, the thickness of a color filter substrate of a liquid crystal display (LED) screen. If the thickness is designed as 53 μm (or even less), the process will be highly difficult. Additionally, such a thin substrate is very likely to result in the breakage of the screen, and thus the reliability is very low.
Referring to
In accordance with the refraction principle, the followings are obtained:
n1×sin θ1=n3×sin θ5,
n1×sin β1=n3×sin β5.
Since n1>n3, then θ5>θ1 and β5>β1, and the visual angle θ is equal to β5−β5.
Referring to
According to an embodiment of the present invention, the optical device 23 may be a triangular prism, which is arranged in the light-transmitting region 21 and extends to at least partially cover the boundary of the light-transmitting region 21 and the light-blocking region 22. This will be described below in more detail with reference to
According to an embodiment of the present invention, the optical device 23 may be an isosceles triangular prism 23, and a center line M of the vertex angle of the isosceles triangular prism coincides with a center line of the light-transmitting region 21 in a column direction. For the light from a light-transmitting region 21 and the light at boundaries of the light-transmitting region 21 and two light-blocking regions 22 adjacent to the light-transmitting region 21, the optical device 23 may expand the dual-view visual angle thereof, although the situation at only one boundary is shown in
As a whole, a plurality of optical devices 23 may be circularly arranged in the form of an array, to be formed on each light-transmitting region 21 of each grating structure. According to different positions where the optical devices 23 are formed (for example, the optical devices 23 are formed within a center region of the light control plate or within an edge region of the light control plate), the optical devices 23 formed as isosceles triangular prisms may have different vertex angles, so that the apexes of a plurality of isosceles triangular prisms 23 are located at different heights relative to the surface of the substrate 20.
According to an embodiment of the present invention, the refractivity of the optical device 23 may be larger than that of the substrate 20. This will be described below in more detail with reference to
Referring to
As shown in
The refractivity of the optical device 23 is n2, the refractivity of the substrate 20 is n1, and the refractivity of the air is n3, wherein n2>n1 and n2>n3.
In accordance with the refraction principle, the followings are obtained:
n1×sin θ1=n2×sin θ2,
n1×sin β1=n2×sin β2.
Since n2>n1, then θ1>θ2 and β1>β2.
Further, in accordance with the refraction principle, the followings are obtained:
n2×sin θ3=n3×sin θ4,
n2×sin β3=n3×sin β4.
Since n2>n3, then θ4>θ3 and β4>β3.
The visual angle β of the light control plate according to this embodiment of the present invention is equal to θ4+β4, and thus the visual angle is increased. In other words, a scope, within which the fields of view provided by the light control plate can be viewed, is extended.
According to an embodiment of the present invention, the optical device 23 may be formed from a resin material, so that the cost may be controlled. During the preparation process, the light-blocking regions 22 and the optical device 23 may be formed above the substrate 20 by using a same halftone mask plate or gray-tone mask plate through one patterning process.
According to an embodiment of the present invention, a dual-view display panel including the light control panel according to the present invention is provided.
Referring to
Referring to
According to an embodiment of the present invention, the base angle of the optical device 23 formed as an isosceles triangular prism is γ. As shown in
According to an embodiment of the present invention, the width of the optical device 23 in a row direction is smaller than the width of the pixel region 411, so that a larger visual range is ensued.
Since the optical device 23 formed as the isosceles triangular prism will not result in chromatic dispersion, and light of pure color generated by the pixel regions 411 may have a maximum color gamut and a best display effect. According to an embodiment of the present invention, each optical device 23 may be of a same size in order to simplify the preparation process.
According to an embodiment of the present invention, the display screen 41 may be a liquid crystal display (LCD) screen, including a color filter substrate and an array substrate which are arranged oppositely, and a liquid crystal layer located between the color filter substrate and the array substrate. The substrate 20 of the light control plate according to the present invention may be a color filter substrate of the LCD screen.
Alternatively, the display screen 41 may be an organic light emission display (OLED) screen, and the substrate 20 of the light control plate according to the present invention may be a substrate of the OLED screen on a display side.
The dual-view display panel according to the present invention may be applied to various display devices, including, but not limited to, an LCD panel, electronic paper, an OLED panel, a mobile phone, a tablet computer, a TV set, a display, a notebook computer, a digital photo frame, a navigator or any other products or components with a display function.
Although various embodiments of the present invention have been described above in detail with reference to the accompanying drawings, these implementations are merely exemplary implementations used for describing the principle of the present invention, and the present invention is not limited thereto. One of ordinary skill in the art may make various modifications and improvements without departing from the spirit and essence of the present invention, and those modifications and improvements shall fall into the protection scope of the present invention.
Number | Date | Country | Kind |
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201610579002.X | Jul 2016 | CN | national |