Abstract:
The invention relates to a system for background lighting of displays or screens, including at least one lighting device including a glass envelope and a transparent element provided thereabove, at least one surface of the element being provided with a fluorescent layer on at least a portion of its surface.
Abstract:
A method of fabricating a backlight module in which at least one luminescence element is positioned, including: positioning a luminescence element in at least one cavity formed on a carrier; forming a lower electrode on a substrate; transferring the luminescence element positioned on the carrier to the substrate, connecting the luminescence element to a pattern of the lower electrode formed on the substrate, and removing the carrier; forming an insulating layer on a surface of the substrate to which the luminescence element is transferred, and exposing a top region of the luminescence element; and forming an upper electrode on the exposed top region of the luminescence element. Accordingly, the backlight module including very small luminescence elements being of a micro unit in size is easily fabricated.
Abstract:
An organic electroluminescent device includes first and second substrates attached by a seal pattern, array elements having a plurality of switching devices on the first substrate; a color changing medium on a rear surface of the second substrate, wherein the color changing medium has a black matrix that defines sub-pixel regions and has red, green and blue color changing layers respectively corresponding to the sub-pixel regions, a planarizing layer on the color changing medium, a first electrode on a rear surface of the planarizing layer, an organic electroluminescent layer on a rear surface of the first electrode, second electrodes on a rear surface of the organic electroluminescent layer that correspond to respective sub-pixel regions, and a plurality of electrical connectors between the first and second substrates, wherein electrical connectors connect the array elements on the first substrate to the second electrodes on the second substrate, respectively.
Abstract:
An organic electroluminescent device includes first and second substrates attached by a seal pattern, array elements having a plurality of switching devices on the first substrate; a color changing medium on a rear surface of the second substrate, wherein the color changing medium has a black matrix that defines sub-pixel regions and has red, green and blue color changing layers respectively corresponding to the sub-pixel regions, a planarizing layer on the color changing medium, a first electrode on a rear surface of the planarizing layer, an organic electroluminescent layer on a rear surface of the first electrode, second electrodes on a rear surface of the organic electroluminescent layer that correspond to respective sub-pixel regions, and a plurality of electrical connectors between the first and second substrates, wherein electrical connectors connect the array elements on the first substrate to the second electrodes on the second substrate, respectively.
Abstract:
A surface light source device includes a light source body having a plurality of discharge spaces that are divided into a light-emitting region and a non-light-emitting region. The light-emitting region has a first cross sectional area. The non-light-emitting region has a second cross sectional area larger than the first cross sectional area. An electrode for applying a voltage to a discharge gas, which is injected into the discharge spaces, is provided to a portion of the light source body corresponding to the non-light-emitting region. Thus, a larger amount of the discharge gas may be distributed in the non-light-emitting region than in the light-emitting region. As a result, the electrode may not serve as a dark field. Further, the surface light source device may have a long life span.
Abstract:
An organic electroluminescent device includes first and second substrates attached by a seal pattern, array elements having a plurality of switching devices on the first substrate; a color changing medium on a rear surface of the second substrate, wherein the color changing medium has a black matrix that defines sub-pixel regions and has red, green and blue color changing layers respectively corresponding to the sub-pixel regions, a planarizing layer on the color changing medium, a first electrode on a rear surface of the planarizing layer, an organic electroluminescent layer on a rear surface of the first electrode, second electrodes on a rear surface of the organic electroluminescent layer that correspond to respective sub-pixel regions, and a plurality of electrical connectors between the first and second substrates, wherein electrical connectors connect the array elements on the first substrate to the second electrodes on the second substrate, respectively.
Abstract:
A method for fabricating a plasma display panel can improve contrast of a panel by using an inkjet printing method in forming a fluorescent layer in the fabrication process of the plasma display panel. Also, after charging a liquid flake of fluorescent ink with a charge of a predetermined polarity, contrast of the panel can be improved by inducing the injection direction of the liquid flake by charging an address electrode with a charge having an opposite polarity to the liquid flake so that the charged liquid flake can be printed in the center portion of the cell region.
Abstract:
A plasma display panel has a first substrate including a first dielectric layer which covers a plurality of address electrodes; back face barrier ribs, each of which is located between two neighboring address electrodes; a fluorescent layer which covers the back face barrier ribs and the first dielectric layer; and a second substrate including plural pairs of X sustain electrodes and Y sustain electrodes, which are arranged to cross at right angles to the address electrodes, and a second dielectric layer which covers the sustain electrodes. The first substrate is arranged opposite to the second substrate via a discharge space which is filled with gas for radiating ultraviolet rays to make the fluorescent layer emit light and buffer gas, and the thickness of the second dielectric layer in the second substrate is set to be larger at a portion between the X and Y sustain electrodes.