Abstract:
A display device free from a deterioration in luminescence efficiency is provided. In the display device 1 of the present invention, since an inorganic film 28 is formed after concave parts 13 in which luminescence portions 15 are positioned are filled with a filling film 27, no crack is formed in the inorganic film 28. Since the inorganic film 28 is made of a material having high gas tightness and heat conductivity (such as, diamond-like carbon or AlN), water and oxygen will hardly penetrate the luminescence portions 15, and heat of the luminescence portions 15 will be conducted to the inorganic film 28, so that the luminescence portions 15 do not reach high temperatures. Further, since a gap between first and second panels 10, 20 is filled with a resin film 29, the atmosphere does not enter from the outside. Because the luminescence portions 15 are free from damage from water, oxygen and heat, the display device 1 of the present invention has a prolonged life.
Abstract:
When a pulsed voltage is applied to a drive electrode (4), an electric field is concentrated in the vicinity of a slit, producing a field emission phenomenon. The emitted electrons are applied through an electrically conductive coating layer (6) and an electron passage layer (7) to a fluorescent layer (8) when a bias voltage is applied to a transparent electrode (9). The fluorescent layer (8) is excited to emit light through the transparent electrode (9) as indicated by the arrows. Light-emitting devices (1) may be arranged in a two-dimensional array, providing a field emission display.
Abstract:
A light-emitting device (52, 80, 110, 128, or 130) suitable for a flat-panel cathode-ray tube display contains a light-emissive region (66) formed over a plate (64). The light-emissive region contains a plurality of light-emissive particles (72). Part of the outer surface of each light-emissive particle is conformally covered with one or more coatings (74, 82, 84, 112, and 114). The coatings variously provide light-reflection, gettering, intensity-enhancement, and contrast-enhancement functions.
Abstract:
L'invention porte sur un dispositif cathodoluminescent (1), comportant une couche luminescente (2) présentant une première face (3), dite face avant, destinée à recevoir des électrons incidents, ladite couche luminescente (2) étant adaptée à absorber des électrons incidents et à émettre en réponse un rayonnement lumineux, caractérisé en ce que la face avant (3) de la couche luminescente (2) est revêtue d'une couche comportant des nanofils (4) électriquement conducteurs.
Abstract:
A barrier film including a substrate; a base polymer layer adjacent to the substrate; an oxide layer adjacent to the base polymer layer; a adhesion-modifying layer adjacent to the oxide layer; and a top coat polymer layer adjacent to the adhesion-modifying layer. An optional inorganic layer can be applied over the top coat polymer layer. The inclusion of a adhesion-modifying layer provides for enhanced resistance to moisture and improved peel strength adhesion of the top coat polymer layer to the underlying barrier stack layers.
Abstract:
A display device free from a deterioration in luminescence efficiency is provided. In the display device 1 of the present invention, since an inorganic film 28 is formed after concave parts 13 in which luminescence portions 15 are positioned are filled with a filling film 27, no crack is formed in the inorganic film 28. Since the inorganic film 28 is made of a material having high gas tightness and heat conductivity (such as, diamond-like carbon or A1N), water and oxygen will hardly penetrate the luminescence portions 15, and heat of the luminescence portions 15 will be conducted to the inorganic film 28, so that the luminescence portions 15 do not reach high temperatures. Further, since a gap between first and second panels 10, 20 is filled with a resin film 29, the atmosphere does not enter from the outside. Because the luminescence portions 15 are free from damage from water, oxygen and heat, the display device 1 of the present invention has a prolonged life.
Abstract:
A barrier film including a substrate; a base polymer layer adjacent to the substrate; an oxide layer adjacent to the base polymer layer; a adhesion-modifying layer adjacent to the oxide layer; and a top coat polymer layer adjacent to the adhesion-modifying layer. An optional inorganic layer can be applied over the top coat polymer layer. The inclusion of a adhesion-modifying layer provides for enhanced resistance to moisture and improved peel strength adhesion of the top coat polymer layer to the underlying barrier stack layers.
Abstract:
A self emission device (644) that emits light (526). The self emission device can include at least one light emission layer (104) encompassing an area, and generating light over such area in a distributed fashion. The self emission device also can include a first electrode (113) interfacing with a first side (116) of the light emission layer and a second electrode (114) interfacing with a second side (117) of the light emission layer. The first electrode and the second electrode can provide energy used by the light emission layer to illuminate. The self emission device can be a component of a display (100) comprising a reflective display panel (102).