This application claims the priority to Chinese Patent Application No. 201710051546.3, filed on Jan. 20, 2017, the content of which is hereby incorporated by reference in its entirety.
The present disclosure relates to the field of display technologies, and particularly to an electronic display component and a display device.
An electronic paper, also referred to as a digital paper, is an ultra-thin and ultra-light-weighted display screen. As illustrated in
However the electronic paper on which only the white and black states can be displayed have become unsatisfactory to its consumers as the market of display devices is developing.
In view of this, embodiments of the disclosure provide an electronic display component and a display device so as to provide a color electronic-paper component to enable an image to be adjusted in color.
An embodiment of the disclosure provides an electronic display component including a plurality of display elements which are arrayed, each of the display elements includes transmitting gratings on a transparent substrate, a photoelectric material in contact with the transmitting gratings, and a control part configured to control the refractive index of the photoelectric material,
An embodiment of the disclosure further provides a display device including the electronic display component above.
Embodiments of the disclosure provide an electronic display component and a display device so as to provide a color electronic-paper component to enable an image to be adjusted in color.
In order to make the objects, the technical solutions, and the advantages of the disclosure more apparent, the disclosure will be further described in details with reference to the drawings. Apparently the described embodiments are only a part but all of the embodiments of the disclosure. Based upon the embodiments here of the disclosure, all of other embodiments derived by those ordinarily skilled in the art without any inventive effort shall come into the scope of the disclosure.
An electronic display component according to particular embodiments of the disclosure will be described below in details with reference to the drawings.
As illustrated in
Where the transmitting gratings 22 are arranged at a sub-wavelength periodicity to transmit light corresponding to the sub-wavelength periodicity, where the material of the surface of each of the transmitting gratings 22 is a metal material; and
The control part 24 is configured to adjust the refractive index of the photoelectric material 23 according to received external voltage so that the light passing the transmitting gratings 22 exits or is blocked.
The transmitting gratings in a particular embodiment of the disclosure are arranged at the sub-wavelength periodicity, the material of the surface of each of the transmitting gratings 22 is a metal material, and the control part adjusts the refractive index of the photoelectric material in contact with the transmitting gratings according to the received external voltage so that the light passing the transmitting gratings exits or is blocked. As compared with the prior art, the refractive index of the photoelectric material in contact with the transmitting gratings is adjusted as a function of voltage in a particular embodiment of the disclosure, taking into account that transmitting gratings with a sub-wavelength periodicity have the characteristic of transmitting light at a specific wavelength, and this filtering characteristic thereof is very sensitive to the refractive index of a material in contact therewith, so that the transmitting gratings transmit light at the specific wavelength in a voltage operating state, but fail to transmit the light in another voltage operating stage, for the purpose of providing the color electronic-paper component to enable an image to be adjusted in color.
The characteristic of transmitting gratings with a sub-wavelength periodicity to transmit light at a specific wavelength will be described below in brief If the aperture size of a sub-wavelength metal hole is less than an incidence wavelength, then the photoelectric element may transmit light abnormally beyond the traditional optical diffraction limit. As illustrated in
Particularly in a particular embodiment of the disclosure, the surface of each transmitting grating is a metal film layer; or the surface of each transmitting grating includes a metal film layer and an insulation medium film layer stacked over each other, where the metal film layer is located on the surface of the transmitting grating; or the surface of each transmitting grating includes a metal film layer, an insulation medium film layer, and a metal film layer stacked in that order. In a particular embodiment of the disclosure, the material of the surface of each transmitting grating is a metal material to enable photons to resonate with the plasma of the surface, and the light to be transmitted.
In a particular implementation, in a particular embodiment of the disclosure, the material of the metal film layer is one or a combination of aluminum (Al), silver (Ag), and gold (Au), and of course, the metal film layer can alternatively be made of another metal material, e.g., copper (Cu), in a real production process thereof, although the metal film layer will not be limited to any particular material in a particular embodiment of the disclosure.
Particularly in a particular embodiment of the disclosure, the periodicity T of each of the transmitting gratings satisfies the equation of:
λ=T*[(na2*ϵm/(na2+ϵm))1/2−sin θ]/n,
Where λ represents a wavelength of red or green or blue light; θ represents the angle between light exiting a transmitting grating, and the plane where the transparent substrate lies; na represents the refractive index of the photoelectric material; ϵm represents a dielectric constant of the metal material of the surface of the transmitting grating; and n represents a diffractive order.
As can be apparent from the equation above, the wavelength of the transmitted light is very sensitive to the refractive index of the material of the surface in contact, so that the refractive index of the material of the surface of the grating can be controlled to let the light transmitted therethrough or not, where transmitting gratings with a sub-wavelength periodicity have the characteristics above of filtering and sensitivity to an ambient refractive index. In a particular embodiment of the disclosure, the refractive index of the photoelectric material in contact with the transmitting gratings can be controlled using the two characteristics of filtering and sensitivity to an ambient refractive index of the transmitting gratings to thereby provide the adjustable full-color electronic display.
Particularly in a particular embodiment of the disclosure, the photoelectric material is a liquid crystal material which can be selected more conveniently and easily. In a particular embodiment of the disclosure, the photoelectric material will not be limited to a liquid crystal material, but may alternatively be another material with a refractive index thereof variable with voltage.
Particularly as illustrated in
In a particular embodiment of the disclosure, the control part is arranged as the first transparent electrode 41 and the second transparent electrode 42 arranged opposite to each other, so that it will be more convenient and easier to product it in practice, and the first transparent electrode 41 and the second transparent electrode 42 arranged opposite to each other can better receive the external voltage, and adjust the refractive index of the photoelectric material according to the received external voltage. In
Particularly as illustrated in
Particularly in a particular embodiment of the disclosure, the display elements are grouped into a plurality of groups of display elements, and each group of display elements includes three display elements including a first display element in which the transmitting gratings are configured to transmit red light, a second display element in which the transmitting gratings are configured to transmit green light, and a third display element in which the transmitting gratings are configured to transmit blue light; and in a particular implementation, in a particular embodiment of the disclosure, the size of an area in which each group of display elements is arranged may be the same as the size of an area of a pixel element on a liquid crystal display panel in the prior art, and the size of an area in which each display element is arranged may be the same as the size of a sub-pixel element on the liquid crystal display panel in the prior art.
Particularly in a particular embodiment of the disclosure, the control part is configured to adjust the refractive index of the photoelectric material according to the received external voltage upon reception of the external voltage so that the light passing the transmitting gratings exits; and to adjust the refractive index of the photoelectric material when no external voltage is received so that the light passing the transmitting gratings 22 is blocked; or to adjust the refractive index of the photoelectric material according to the received external voltage upon reception of the external voltage so that the light passing the transmitting gratings 22 is blocked; and to adjust the refractive index of the photoelectric material when no external voltage is received so that the light passing the transmitting gratings 22 exits.
Displaying in the three primary colors of R, G, and B on the electronic display component according to the particular embodiment of the disclosure will be described below in brief with reference to
In a particular embodiment of the disclosure, the control part will be described by way of example, which adjusts the refractive index of the photoelectric material according to the received external voltage upon reception of the external voltage so that the light passing the transmitting gratings exits; and adjusts the refractive index of the photoelectric material when no external voltage is received so that the light passing the transmitting gratings is blocked.
In a particular embodiment of the disclosure, the control part will be described by way of an example, which includes the first transparent electrode and the second transparent electrode arranged opposite to each other, and the photoelectric material will be described by way of an example, which is a liquid crystal material.
As illustrated in
Alike as illustrated in
Alike as illustrated in
Based upon the same inventive idea, a particular embodiment of the disclosure further provides a display device including the electronic display component according to the particular embodiments above of the disclosure, where the display device can be a liquid crystal TV set, an Organic Light Emitting Diode (OLED) TV set, an electronic paper, or another display device.
In summary, a particular embodiment of the disclosure provides an electronic display component including a plurality of display elements which are arrayed, each of the display elements includes transmitting gratings on a transparent substrate, a photoelectric material in contact with the transmitting gratings, and a control part configured to control the refractive index of the photoelectric material, where the transmitting gratings are arranged at a sub-wavelength periodicity to transmit light corresponding to the sub-wavelength periodicity, where the material of the surface of each transmitting grating is a metal material; and the control part is configured to adjust the refractive index of the photoelectric material according to received external voltage so that the light passing the transmitting gratings exits or is blocked. In a particular embodiment of the disclosure, the transmitting gratings are arranged at the sub-wavelength periodicity, and the material of the surface of each transmitting grating is a metal material; and the control part adjusts the refractive index of the photoelectric material in contact with the transmitting gratings according to the received external voltage so that the light passing the transmitting gratings exits or is blocked, so as compared with the prior art, the refractive index of the photoelectric material in contact with the transmitting gratings is adjusted as a function of voltage in a particular embodiment of the disclosure, taking into account that transmitting gratings with a sub-wavelength periodicity have the characteristic of transmitting light at a specific wavelength, and this filtering characteristic thereof is very sensitive to the refractive index of a material in contact therewith, so that the transmitting gratings transmit light at the specific wavelength in a voltage operating state, but fail to transmit the light in another voltage operating stage, for the purpose of providing the color electronic-paper component to enable an image to be adjusted in color.
Evidently those skilled in the art can make various modifications and variations to the disclosure without departing from the spirit and scope of the disclosure. Accordingly the disclosure is also intended to encompass these modifications and variations thereto so long as the modifications and variations come into the scope of the claims appended to the disclosure and their equivalents.
Number | Date | Country | Kind |
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201710051546.3 | Jan 2017 | CN | national |