1. Field of the Invention (Technical Field)
The present invention comprises methods and devices for reflective color displays, wherein each sub-pixel preferably comprises at least one magneto-optical element that can rotate in more than two stable positions, with corresponding colors, thereby forming a multi-stable (i.e. having more than 2 stable states) display. Such displays are preferably highly light reflective and preferably have low power consumption and increased resolution.
2. Description of Related Art
Traditional color displays such as liquid crystal, plasma and LED displays have sub-pixel and pixel architectures such that each sub-pixel can only produce one color, for example G or green (or be turned off and display black or K), as shown in
An embodiment of the present invention is a reflective display comprising display elements, wherein the smallest display element can display more than one color. The smallest display element preferably comprises a magneto-optical element. The magneto-optical element is preferably rotatable by a magnetic field, preferably comprises two or more stable states, and/or preferably comprises a solid shape and more than one color on a surface of the solid shape. The magneto-optical element optionally comprises a magnet within the solid shape. The number of poles of the magnet is the same as the number of colors on the surface. The magneto-optical element optionally comprises a magnetic material extruded with one or more outer colored layers. The magnetic material optionally comprises a magnetic powder blended with a plastic. At least one area of a color on the surface is preferably uninterrupted. The reflective display preferably further comprises a mask for at least partially masking off from a viewer one or more areas of color adjacent to a desired display color area or a lens for magnifying a desired color area.
Two or more smallest display elements optionally comprise a pixel. The reflectivity of the pixel is preferably greater than approximately 16%, more preferably greater than 34%, even more preferably greater than approximately 50%, and most preferably greater than approximately 70%. Each pixel preferably comprises a plurality of sub-pixels, each of which preferably comprises one or more magneto-optical elements each having a same color configuration. Each of the magneto-optical elements preferably comprises four colors, the four colors comprising black, white, and two colors selected from the group consisting of red, green, and blue. Each of the primary colors is preferably disposed on the surface between the black and white colors. Each pixel optionally comprises three sub-pixels, wherein the first sub-pixel comprises one or more magneto-optical elements each comprising the colors red, black, green, and white; the second sub-pixel comprises one or more magneto-optical elements each comprising the colors red, black, blue, and white; and the third sub-pixel comprises one or more magneto-optical elements each comprising the colors green, black, blue, and white. The color of each subpixel is preferably selected to enhance a resolution of the display.
An embodiment of the present invention is a reflective display having a reflectivity of greater than approximately 16%, preferably greater than approximately 34%, more preferably greater than approximately 50%, and even more preferably greater than approximately 70%. The display is preferably a full color display.
Objects, advantages and novel features, and further scope of applicability of the present invention will be set forth in part in the detailed description to follow, taken in conjunction with the accompanying drawings, and in part will become apparent to those skilled in the art upon examination of the following, or may be learned by practice of the invention. The objects and advantages of the invention may be realized and attained by means of the instrumentalities and combinations particularly pointed out in the appended claims.
The accompanying drawings, which are incorporated into and form a part of the specification, illustrate several embodiments of the present invention and, together with a description, serve to explain the principles of the invention. The drawings are only for the purpose of illustrating one or more particular embodiments of the invention and are not to be construed as limiting the invention. In the drawings:
One embodiment of the present invention comprises a reflective display wherein each pixel comprises a rotating magneto-optical element (MOE) with more than two optical states. These optical states preferably comprise different colors, although they may comprise other optical characteristics, for example amount of gray-scale or optical layers which may comprise optical effects such as, for example, mirrors, luminescent materials, or color and black and white pigments. As shown in
Thus the smallest display element of an embodiment of the present invention, a single MOE, can present more than one color (for example, black and three other colors) in a single sub-pixel, in contrast with the smallest display element in a traditional RGB display, a sub-pixel, which can display either black (off) or a single color, as shown in
As used throughout the specification and claims, the term “smallest display element” means a sub-pixel, pixel, MOE, display element or the like, and/or the location thereof, which cannot be divided further into smaller display elements. As used throughout the specification and claims, the term “color” means color, tint, shade, gray-scale level, pigment, optical effect, and the like. As used throughout the specification and claims, the term “more than one color” means more than one color when activated and not off, or alternatively means more than one color and black.
An MOE of the present invention may have any aspect ratio, and may comprise any shape. As used throughout the specification and claims, the term “solid shape” means a cylinder, rectangular parallelepiped, prism, right prism, right circular cylinder, cube, cuboid, hexagonal parallelepiped, any cylindrical or preferably regular rectangular solid or polygonal prism, and the like.
Such MOEs may optionally be used together to produce various sub-pixels, pixels and displays. As shown in
The multi-pole MOEs comprising more than one color described herein can be produced in a number of ways, including but not limited to mechanical insertion of magnetic structures into structures having more than one color, or a coloration step on top of a magnetic structure. A preferred method comprises an extrusion process whereby a magnetic structured core is co-extruded with the outer colored layers or layers. The magnetic material preferably comprises a permanent magnetic material such as a ferrite, ceramic magnetic material or a rare-earth magnetic powder (such as Neodymium Iron Boron (Nd2Fe14B) or Samarium Cobalt, (SmCo5)). This magnetic material is preferably blended with a plastic like Nylon, POM or similar. Magnetic powder is typically isotropic, making it easy to use in pelletization and extrusion processes. The extruded material can be magnetized by the application of a high-strength magnetic field sufficiently strong enough to orient the domains of the magnetic material.
An embodiment of the present invention comprises a display having a reflectivity greater than approximately 34%. The four pole four color MOE geometry shown in
Such MOEs can be combined to form a full color display. The MOE pixel architecture shown in
Another embodiment of the present invention is a display comprising more than four color pixel states. If each MOE has four different color states (for example RGKW), many more combinations of MOE sub-pixels are available for generating shades of color. As shown in
The 64 available pixel states resulting from the combination of three four-color sub-pixels enables various blends and shades of color to be displayed, as shown in
Because each sub-pixel preferably comprises more than one color state, embodiments of the present invention may comprise enhanced image resolution compared to other display technologies with the same pixel and sub-pixel sizes. As shown in
The display architectures comprising smallest display elements or locations each able to display more than one color in accordance with embodiments of the present invention enables the development of new imaging algorithms and stochastic image analysis. These algorithms and stochastic image analysis can also be used in other new display technologies, for example electrostatic displays or layered filter-based displays. Such stochastic analysis can take into account the more than one color states of each MOE, sub-pixel and/or pixel, increasing performance of displays in such areas as reflectivity, color purity and resolution. For example, as shown in
Although the invention has been described in detail with particular reference to these preferred embodiments, other embodiments can achieve the same results. Variations and modifications of the present invention will be obvious to those skilled in the art and it is intended to cover all such modifications and equivalents. The entire disclosures of all patents, references, and publications cited above are hereby incorporated by reference.
This application claims the benefit of the filing of U.S. Provisional Patent Application Ser. No. 61/116,977, entitled “Highly Reflective Full Color Display”, filed on Nov. 21, 2008. This application is also a continuation-in-part application of U.S. patent application Ser. No. 11/860,198, entitled “Reflective, Bi-Stable Magneto Optical Display Architectures”, filed on Sep. 24, 2007, and U.S. patent application Ser. No. 11/862,886, entitled “Magneto-Optical Display Elements”, filed on Sep. 27, 2007. The specifications and claims of these applications are incorporated herein by reference.
Number | Date | Country | |
---|---|---|---|
61116977 | Nov 2008 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 11862886 | Sep 2007 | US |
Child | 12624330 | US | |
Parent | 11860198 | Sep 2007 | US |
Child | 11862886 | US |