Abstract:
In order to reduce the address voltage in a gas discharge type display pane, the address electrodes in the display panel are formed on the barrier ribs. Further, a fluorescent layer is coated on the wall surface of the barrier ribs thereby suppressing erroneous light emission or degradation of the fluorescent layer during address discharge.
Abstract:
There is disclosed an apparatus for forming a fluorescent layer in a plasma display panel by applying a fluorescent paste into grooves formed between a plurality of ribs disposed in parallel on a surface of a substrate. The apparatus includes: a platform for mounting the substrate thereon; a dispenser having at least one nozzle for ejecting the fluorescent paste; a transporter for moving the nozzle relative to the platform; and a controller for controlling the transporter and the dispenser so that the fluorescent paste is consecutively applied into the predetermined grooves between the ribs.
Abstract:
It is the main objective of the present invention to provide a plasma display panel designed to use a common electronic device, wherein a large size screen of the plasma display panel is divided by maintaining a stable discharge state of each cell and decreasing the data amount of the operating circuits in which the divided screens are operated in parallel simultaneously. To accomplish the above objective, a plasma display panel is provided having a common electrode, a scanning electrode, and a data electrode being disposed between an upper substrate and a lower substrate. The common electrode is arranged parallel to the scanning electrode, and the data electrode is arranged perpendicular to the common electrode and the scanning electrode. A cell is at the intersection where the common electrode and the scanning electrode intersect with the data electrode. The data electrode is divided for the purpose of dividing the plasma display panel into plural screens.
Abstract:
A plasma display panel with an increased display contrast improves a visibility of the display at low costs. A green light absorbing filter is provided on the outer surface of a substrate on the display surface side and a monochromatic light transmitting filter corresponding to at least one of red and blue fluorescent material layers which face each other through a discharge space is provided on the inner surface of the substrate on the display surface side. The green light absorbing filter is provided on the outer surface of the substrate on the display surface side and at least one of the red and blue fluorescent material layers is formed by a fluorescent material layer colored so as to absorb the light in wavelength regions other than the corresponding monochromatic light.
Abstract:
A radiation sensitive composition containing a fluorescent substance dispersed therein, comprising (A) the fluorescent substance, (B) an organic polymer binder, (C) at least one optically crosslinkable compound selected from optically crosslinkable monomers and oligomers, and (D) an optically radical-generating agent which comprises (a) a 2,4,5-triaryl imidazole dimer, (b) an amino group-containing benzophenone photosensitizer, and (c) a thiol compound represented by the following formula (1): ##STR1## wherein Z is --O--, --S--, --NH-- or --CONH--. This radiation sensitive composition can provide a fluorescent screen having a larger film thickness and a higher display brightness and hence, will greatly contribute to increases in the size and precision of a fluorescent display device such as a plasma display panel.
Abstract:
A plasma display panel is provided which includes (a) a first substrate, (b) a second substrate, (c) a plurality of sets of electrode pairs extending in a direction A, (d) a partition wall structure formed overlapping the sets of electrode pairs, the partition wall structure including first partition walls extending in a direction B perpendicular to the direction A and second partition walls extending in parallel with the direction A, each of the first and second partition walls defining a cell therein, and (e) third partition walls extending in the direction B. The sets of electrode pairs, the partition wall structure and the third partition walls are arranged in this order between the first and second substrates. The first partition walls have a width W.sub.H greater than a width W.sub.D of the third partition walls. Advantageously, this construction of the plasma display panel permits the panel to exhibit improved luminance and contrast characteristics, and permits the display to constitute a high grade display.
Abstract:
A plasma display panel includes a plurality of sustaining electrodes provided between substrates and arranged in pairs, a plurality of address electrodes disposed perpendicular to the sustaining electrodes thereby forming a matrix and defining a plurality of pixels, each pixel being defined by a pair of sustaining electrodes and a pair of address electrodes; wherein the sustaining electrodes have a projection at each pixel; and the area of the projection varies from the central portion of the panel to the peripheral portion of the panel.
Abstract:
A plasma display device having a face plate and a rear plate spaced apart from each other. Parallel sustaining electrodes are arranged preferably on the face plate, while parallel address electrodes are arranged preferably on the rear plate, so that they are spaced apart from and extend perpendicularly to the sustaining electrodes. Barrier ribs are disposed to define discharge gas spaces adjacent to crossovers of the electrodes. At least some of the barrier ribs are transparent barrier ribs made of a light-permeable material, so that, particularly when the rear plate is covered with a reflective layering, light which might otherwise leak from the rear plate is usefully saved and caused to radiate through the face plate, whereby the use ratio of the emitted light increases.
Abstract:
A gas discharge image display is formed by disposing a plurality of fluorescent lamps 1 each comprising a glass bulb 2 within which a rare gas is sealed, one or more pairs of external electrodes 5a and 5b located on the outer wall of the glass bulb 2, and a fluorescent layer 3 formed on the inner wall of the container facing the external electrodes 5a and 5b. An alternating voltage pulse is applied between the paired external electrodes 5a and 5b by an X drive circuit 9 and a Y drive circuit 10 for discharge light emission, thereby displaying an image. The pressure and alternating voltage in the fluorescent lamp 1 are changed in response to the type of fluorescent material, thereby making near light emission and discharge characteristics of the discharge lamps which differ in electric characteristics.
Abstract:
A plasma display panel (PDP) of a planar discharger type which causes an auxiliary discharge and a display discharge in a single cell. The PDP includes anodes and cathodes formed in strips of different orientations and in different planes such that individual cells are formed which have a display anode, a display cathode, and an auxiliary anode.