Abstract:
A display panel includes a substrate and an electrode disposed on the substrate. A contact angle θ between the substrate and the electrode is expressed by the following Equation 1: arc tangent(T/S)≦θ≦arc tangent(40 T/S) (S: surface area of electrode cross section, T: peak height of electrode cross section).
Abstract:
A plasma display panel including a first substrate and a second substrate arranged substantially in parallel with each other, barrier ribs arranged between the first and second substrates to define discharge cells, and a phosphor layer arranged in the discharge cells. First discharge electrodes are arranged in the discharge cells, and second discharge electrodes are arranged in the discharge cells and in a direction crossing the first discharge electrodes to generate an address discharge with the first discharge electrodes. The second discharge electrodes include windows having different sizes for discharge cells having different color phosphor layers.
Abstract:
A plasma display panel includes a first substrate and a second substrate, the first substrate and the second substrate being provided with a predetermined gap therebetween. Barrier ribs are formed in a non-striped pattern between the first substrate and the second substrate, the barrier ribs defining a plurality of discharge spaces. A plurality of address electrodes are formed on the first substrate along a direction (y), the address electrodes being formed within and outside discharge spaces. A plurality of sustain electrodes are formed on the second substrate along a direction (x), the sustain electrodes being formed within and outside discharge spaces. The address electrodes include large electrode portions provided within discharge spaces and small electrode portions provided outside the discharge spaces. If a width of large electrode portions is AW, a width of small electrode portions is Aw, and a distance between barrier ribs along direction (x) is D, AW is larger than Aw, and AW is 40-75% of D.
Abstract:
The present invention relates to a plasma display panel, more particularly to a plasma display panel including an address electrode. A plasma display panel according to the present invention comprises a scan electrode comprising at least one a first hole disposed in the area protruding to the center of a discharge cell; a sustain electrode comprising at least one a second hole disposed in the area protruding to the center of a discharge cell; and an address electrode comprising a third hole formed corresponding to at least one of the first hole or the second hole. The present invention implements an address electrode corresponding to a transparent electrode to enlarge the overlapping size between the two electrodes for improving jitter characteristic and providing two pad transparent electrode having a high efficiency.
Abstract:
A plasma display panel (PDP) is provided. The PDP includes: a first substrate and a second substrate facing each other; a plurality of first barrier ribs on the second substrate defining a plurality of cells between the first substrate and the second substrate; pairs of scan electrodes and sustain electrodes on the first substrate; a plurality of second barrier ribs each dividing a corresponding cell of the cells into a primary discharge space and an auxiliary discharge space; a plurality of address electrodes on the second substrate. A portion of an address electrode among the address electrodes corresponding to the auxiliary discharge space is wider than other portions of the address electrode, thereby providing an improved addressing discharge.
Abstract:
An electrode-forming composition and a plasma display panel manufactured using the electrode-forming composition are provided. The electrode-forming composition includes: frit, a metal powder, and a vehicle, wherein the metal powder and the frit are contained in a weight ratio of 52 to 62:5 to 15; the plasma display panel including: first and second substrates that face each other with a predetermined distance between; a first electrode formed on the first substrate and extending in a first direction; a dielectric layer formed on the first substrate to cover the first electrode; a second electrode spaced apart from the first electrode, formed on the second substrate, and extending in a second direction crossing the first direction; a barrier rib in a space between the first substrate and the second substrate where the barrier rib defines a plurality of discharge cells; and a phosphor layer formed within each discharge cell, wherein the first electrode includes an insulating glass lager along an edge in the first direction.
Abstract:
A plasma display panel having a new structure is provided. The plasma display panel includes a rear substrate, a front substrate spaced apart from the rear substrate, barrier ribs disposed between the front substrate and the rear substrate and defining a plurality of discharge cells, first discharge electrodes extending in a first direction and including a plurality of first loops surrounding the discharge cell, second discharge electrodes extending in a second direction, and including a plurality of second loops surrounding the discharge cell, and crossing the first discharge electrodes, and phosphor layers disposed in the discharge cells. The first discharge electrodes may operate as an address electrode, and the second discharge electrodes may operate as a scan electrode. The first loop and the second loop may have elliptical and circular shapes, respectively.
Abstract:
A Plasma Display Panel (PDP) capable of reducing an address discharge voltage between address electrodes and Y electrodes, suppressing an address discharge delay, and improving brightness includes: a first substrate, a second substrate spaced apart from the first substrate and facing the first substrate, barrier ribs arranged between the first and second substrates and defining discharge cells where a discharge occurs, discharge electrode pairs including X electrodes and Y electrodes extending across the discharge cells, floating electrodes arranged closer to the Y electrodes than to the X electrodes, address electrodes extending across the discharge cells and intersecting the discharge electrode pairs within the discharge cells, and phosphor layers arranged within the discharge cells. Portions of the address electrodes facing the Y electrodes are wider than portions of the address electrodes facing the X electrodes, or distances between the Y electrodes and the portions of the address electrodes facing the Y electrodes are shorter than distances between the X electrodes and the portions of the address electrodes facing the X electrodes.
Abstract:
There is explained a plasma display panel that is adaptive for improving brightness uniformity of an entire panel.A plasma display panel according to an embodiment of the present invention has a width, a thickness and a gap of a driving electrode, barrier ribs, a black matrix and a dielectric layer etc in a central area set differently from those in a peripheral area of the plasma display panel.
Abstract:
A method for manufacturing electrodes of a plasma display panel includes providing a front transparent substrate including transparent electrodes on the front transparent substrate, coating a black photosensitive paste film and a main photosensitive conductive paste film of negative-working type on the transparent electrodes, exposing the black photosensitive paste film and main photosensitive conductive paste film to define bus electrodes on the transparent electrodes, wherein exposure energy acting on main regions of the bus electrodes is greater than exposure energy acting on edge regions of the bus electrodes, developing the black photosensitive paste film and main photosensitive conductive paste film to form the bus electrodes, in which a thickness of the edge regions of the bus electrodes is less than a thickness of the main regions of the bus electrodes, and firing the black photosensitive paste film and main photosensitive conductive paste film.