Abstract:
Embodiments of the present invention provide a paste for forming a PDP electrode, a method of manufacturing a PDP electrode using the paste, and a PDP including the electrode. The paste includes an aluminum solution containing aluminum particles and a surface treatment agent. The aluminum particles have an average particle size of about 5 μm or less. The surface treatment agent is configured to withstand sintering temperatures of about 550° C. or greater, and remains on the surface of the aluminum particles after sintering. The electrode manufactured from the paste has a specific resistance of about 20 μΩ·cm or less, making it suitable for use as an electrode in a PDP having a reliability of 90% or greater.
Abstract:
A substrate structure for a plasma display panel (PDP), a method of manufacturing a PDP substrate structure of the PDP, and a PDP including the PDP substrate are provided. The PDP substrate structure includes a substrate, an electrode on the substrate and including a first layer and a second layer, the second layer including an aluminum (Al) material, the first layer being between the substrate and the second layer and including a conductive material, the first layer having lower specific resistance than that of the second layer; and a light absorbable layer on the substrate. The light absorbable layer is an oxidization product of the conductive material of the first layer.
Abstract:
Embodiments of the present invention provide a paste for forming a PDP electrode, a method of manufacturing a PDP electrode using the paste, and a PDP including the electrode. The paste includes an aluminum solution containing aluminum particles and a surface treatment agent. The aluminum particles have an average particle size of about 5 μm or less. The surface treatment agent is configured to withstand sintering temperatures of about 550° C. or greater, and remains on the surface of the aluminum particles after sintering. The electrode manufactured from the paste has a specific resistance of about 20 μΩ·cm or less, making it suitable for use as an electrode in a PDP having a reliability of 90% or greater.
Abstract:
A Plasma Display Panel (PDP) includes: a first substrate; a second substrate arranged parallel to the first substrate; and a plurality of discharge electrodes arranged within each discharge cell arranged between the first and second substrates. The first and second substrates are divided into a display region adapted to display an image, a connection region where the plurality of discharge electrodes are adapted to be electrically connected to an external terminal, and a buffer region arranged along edges of the connection region. The plurality of discharge electrodes continuously extend over the display region, the connection region, and the buffer region, and a cross-section of a portion of each of the plurality of discharge electrodes arranged in the buffer region is greater than that of a portion of each of the plurality of discharge electrodes arranged in the connection region.
Abstract:
A plasma display panel (PDP) can include a front panel with a plurality of scan electrodes and a plurality of common electrodes and a rear panel with a plurality of installed barrier walls. In such a PDP, a plurality of first bus electrodes and a plurality of second bus electrodes may be formed on one surface of a front substrate of the front panel. The first bus electrodes may be formed in contact with one surface of the front substrate, and at least portions of the scan electrodes and common electrodes may be formed between the first bus electrodes and the second bus electrodes. Also, the first bus electrodes may include a conductive material that absorbs light from the other surface of the front substrate.
Abstract:
A plasma display panel (PDP) that has a T-shaped electronic structure or an electrode structure with adjacent parts of the scan electrode and the sustain electrode being broad, and parts coupled to the bus electrodes being narrow in a like manner to the T-shaped electrode structure is provided. The PDP has various discharge modes according to magnitudes of sustain discharge voltages. A frame is divided into a plurality of subfields with respective weights and is driven in the PDP. The subfields with low weights use low sustain discharge voltages to perform a discharge with a small quantity of emitting light, and the subfields with high weights use high sustain discharge voltages to perform a discharge with a big quantity of emitting light, thereby increasing representation performance of low gray scales.
Abstract:
A plasma display panel includes first and second substrates that are substantially parallel to each other with a predetermined gap therebetween. The substrates include a display region and a non-display region. Barrier ribs are mounted between the first and second substrates within the display region and define discharge cells. The barrier ribs include an outermost barrier rib located at an edge of the display region. Dummy barrier ribs are mounted between the first and second substrates within the non-display region. The dummy barrier ribs include a first sub barrier rib disposed at a predetermined distance from the outermost barrier rib, and at least one second sub barrier rib connected to the first sub barrier rib and the outermost barrier rib.
Abstract:
A plasma display panel (PDP) can include a front panel with a plurality of scan electrodes and a plurality of common electrodes and a rear panel with a plurality of installed barrier walls. In such a PDP, a plurality of first bus electrodes and a plurality of second bus electrodes may be formed on one surface of a front substrate of the front panel. The first bus electrodes may be formed in contact with one surface of the front substrate, and at least portions of the scan electrodes and common electrodes may be formed between the first bus electrodes and the second bus electrodes. Also, the first bus electrodes may include a conductive material that absorbs light from the other surface of the front substrate.
Abstract:
A plasma display panel includes a first substrate, on which discharge sustain electrodes are formed, and an opposing second substrate, on which address electrodes are aligned in a first direction. Barrier ribs between the substrates define a plurality of discharge cells within which phosphor layers are formed. The display electrodes have bus electrodes, forming a corresponding pair within each of the discharge cells, and extension electrodes, extending from the bus electrodes into each of the discharge cells to form an opposing pair. A pair of the display electrodes corresponding to each of the discharge cells forms a first gap and a second gap having different distances from each other between the opposing extension electrodes, and forms a third gap between the bus electrodes. The second gap is longer than the first gap, and the third gap is longer than the second gap.
Abstract:
A plasma display panel. A first substrate and a second substrate are provided opposing one another with a predetermined gap therebetween. Address electrodes are formed on the second substrate. Barrier ribs are mounted between the first substrate and the second substrate, the barrier ribs defining a plurality of discharge cells and a plurality of non-discharge regions. Phosphor layers are formed within each of the discharge cells. Discharge sustain electrodes are formed on the first substrate. The non-discharge regions are formed in areas encompassed by discharge cell abscissas and ordinates that pass through centers of each of the discharge cells. Also, external light absorbing members are formed between the second substrate and the barrier ribs layer at areas corresponding to locations of the non-discharge regions.