The present application claims priority from Japanese application JP2011-107113 filed on May 12, 2011, the contents of which are hereby incorporated by reference into this application.
1. Field of the Invention
The present invention relates to a display device.
2. Description of the Related Art
A micro-electro-mechanical system (MEMS) display is a display expected to replace a liquid crystal display (see Japanese Patent Application Laid-open No. 2008-197668). This display differs from a liquid crystal shutter type display utilizing polarization, and performs light-dark display by mechanically opening and closing a light transmissive window by a shutter unit including a fixed aperture and a shutter. Specifically, the shutter is arranged above the fixed aperture to block light, and the shutter is retracted from the position above the fixed aperture to allow light passage.
The fixed aperture is defined by an opening formed in alight shielding film, and the shutter is arranged at an interval from the light shielding film to enable driving thereof. Therefore, when the shutter is retracted from the position above the fixed aperture, light traveling perpendicularly to a screen passes through the fixed aperture, but light traveling obliquely in a direction of the retracted shutter is blocked by the shutter. Therefore, there has been a problem in viewing angle characteristics that brightness differs depending on viewing directions.
The present invention has an object to solve the problem in viewing angle characteristics.
(1) According to an exemplary embodiment of the present invention, there is provided a display device, including: a light shielding film including a plurality of fixed apertures, which each allow passage of light; a plurality of shutters, which are arranged at an interval from the light shielding film and correspond to the plurality of fixed apertures, respectively, for controlling passage and blocking of the light; and a drive portion for driving each of the plurality of shutters to move between a position above the plurality of fixed apertures and a position retracted from the plurality of fixed apertures (that is, between a position for allowing the light to pass and a position for blocking the light). The plurality of fixed apertures each have an elongated shape including a long-side direction and a short-side direction, the plurality of fixed apertures including: fixed apertures of a first group in which the long-side direction is directed in a first direction; and fixed apertures of a second group in which the long-side direction is directed in a second direction different from (for example, orthogonal to) the first direction. The plurality of shutters include: shutters of a first group, which correspond to the fixed apertures of the first group, respectively, and are linearly driven in the second direction; and shutters of a second group, which correspond to the fixed apertures of the second group, respectively, and are linearly driven in the first direction. According to the present invention, the plurality of elongated fixed apertures are arranged in different directions, and hence it is possible to solve the problem in viewing angle characteristics that brightness differs depending on viewing directions.
(2) In the display device according to Item (1), a number of the fixed apertures of the first group may be equal to a number of the fixed apertures of the second group.
(3) In the display device according to Item (1) or (2), the plurality of fixed apertures may be arranged so that at least one column including at least two of the fixed apertures of the first group and at least one column including at least two of the fixed apertures of the second group are alternately arrayed.
(4) In the display device according to Item (1) or (2), a first region in which at least one of the fixed apertures of the first group is arranged and a second region in which at least one of the fixed apertures of the second group is arranged may be alternately arranged in both of a column direction and a row direction.
(5) In the display device according to any one of Items (1) to (4), the plurality of shutters may be formed to include a plurality of drive apertures, respectively, and the light may pass when the plurality of drive apertures are arranged at positions opposed to the plurality of fixed apertures, respectively.
(6) In the display device according to Item (5), n shutters, where n≧2, of the plurality of shutters may be integrated so as to include n drive apertures of the plurality of drive apertures.
(7) In the display device according to Item (6), the n drive apertures may each have an elongated shape including a long-side direction and a short-side direction, so as to be elongated orthogonal to a moving direction of the n integrated shutters, and may be arranged so as to be aligned in the long-side direction and adjacent to each other in the short-side direction.
In the accompanying drawings:
Hereinafter, an embodiment of the present invention is described with reference to the drawings.
The display device includes a pair of light transmissive substrates 10 and 12 (for example, glass substrates). The pair of light transmissive substrates 10 and 12 are arranged so as to be opposed to each other at an interval. One light transmissive substrate 10 has a light shielding film 34 formed thereon on a side opposed to the other light transmissive substrate 12. In the light shielding film 34, as illustrated in
The plurality of fixed apertures 36 each have an elongated shape including a long-side direction and a short-side direction. As illustrated in
In other words, a plurality of first regions 44 in each of which at least one (two in the example of
As illustrated in
In the example of
As illustrated in
The shutter 14 is provided on the one light transmissive substrate 10.
The shutter 14 is supported by a first spring 20 to be suspended above the light transmissive substrate 10. A plurality of (four in
The first spring 20 is made of an elastically deformable material, and is arranged so as to be deformable in a direction parallel to the plate surface of the shutter 14. Specifically, the first spring 20 includes a first portion 24 extending in a direction separating from the shutter 14 (direction intersecting (for example, orthogonal to) the length direction of the drive aperture 16), a second portion 26 extending in a direction along the length direction of the drive aperture 16 outwardly from a center of the drive aperture 16 in the length direction, and a third portion 28 further extending in the direction separating from the shutter 14 (direction intersecting (for example, orthogonal to) the length direction of the drive aperture 16). Further, as indicated by the arrows in
The light transmissive substrate 10 is provided with a second spring 32 supported by a second anchor portion 30. The second spring 32 is opposed to the second portion 26 of the first spring 20 on a side separated from the shutter 14 with respect to the second portion 26. When a voltage is applied to the second anchor portion 30, due to the electrostatic attractive force caused by the potential difference between the second anchor portion 30 and the second portion 26 of the first spring 20, the second portion 26 is attracted toward the second anchor portion 30. When the second portion 26 is attracted, the shutter 14 is also attracted via the first portion 24 provided integrally with the second portion 26. That is, the first spring 20 and the second spring 32 are provided for constituting the drive portion 40 for mechanically driving the shutter 14.
Light is allowed to pass when the above-mentioned drive aperture 16 of the shutter 14 and the fixed aperture 36 of the light shielding film 34 communicate with each other, and light is blocked when the fixed aperture 36 of the light shielding film 34 is covered due to the movement of the shutter 14. In other words, the shutter 14 is mechanically driven so as to control the passage and blocking of light through the fixed aperture 36 of the light shielding film 34. One drive aperture 16 and one fixed aperture 36 corresponding to each other constitute one pixel, and an image is displayed by a large number of pixels. Therefore, a plurality of (large number of) shutters 14 are provided.
The pair of light transmissive substrates 10 and 12 are fixed at an interval with a sealing member 38 illustrated in
As illustrated in
Next, the action and effect of the display device according to this embodiment are described. In this embodiment, the drive portion 40 enables each of the plurality of shutters 14 to move between a position above the fixed aperture 36 and a position retracted from the fixed aperture 36.
Because the fixed aperture 36a and the drive aperture 16a communicate with each other, the light Lv passing through the fixed aperture 36a perpendicularly (in a direction orthogonal to the surface of the light shielding film 34) further passes through the drive aperture 16a. Further, the light Ly inclined in the first direction Y is inclined in the long-side direction of the drive aperture 16a, and hence the light Ly passes through the drive aperture 16a from the fixed aperture 36a. In contrast, even though the light Lx inclined in the second direction X passes through the fixed aperture 36a, the light Lx travels in the short-side direction of the drive aperture 16a, and hence the traveling thereof is blocked by the shutter 14. Therefore, the pixel controlled by the shutter 14a of the first group looks bright when obliquely viewed in the first direction Y and dark when obliquely viewed in the second direction X.
As described above, the shutter 14a of the first group and the shutter 14b of the second group have different (opposite) characteristics, and hence when both the shutters are used in combination, the difference in brightness arising depending on directions can be reduced.
According to this embodiment, the plurality of elongated fixed apertures 36 are arranged in different directions, and hence it is possible to solve the problem in viewing angle characteristics that brightness differs depending on viewing directions.
The present invention is not limited to the above-mentioned embodiment, and various modifications may be made thereto. For example, the structure described in the embodiment may be replaced by substantially the same structure, a structure which has the same action and effect, or a structure which can achieve the same object.
Number | Date | Country | Kind |
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2011-107113 | May 2011 | JP | national |