Abstract in simplified Chinese:一种背光用交流型等离子显示板,主要包括:一后基板及一前基板,互相以一预定距离呈对立配置;密封浆,用以将基板之边缘密封;一对介于后基板与前基板间之放电电极,其具有复数个、互相以一预定距离相隔、与基板无接点之复数个孔道;以及复数个之分隔体,介于后基板与放电电极之间、以及前基板与放电电极之间,以保持各组件之距离者。
Abstract in simplified Chinese:〔课题〕关于排列了利用一对共享电极片及个别电极片放电发光之显示单元之显示皮肤及其驱动方法,为了可个别驱动各显示单元,其目的在于减少和个别电极片连接之个别触点数,而且借着在单位顺序内分别设置控制复数共享电极之时间区使得可个别驱动各显示单元。〔解决手段〕关于具有在透明基板上之行方向延伸之共享电极及自该共享电极向列方向延伸之复数共享电极片、和设于相邻之共享电极片之间之该透明基板上之个别电极片,并排列了利用一对共享电极片及个别电极片放电发光之显示单元之显示皮肤及其驱动方法,设置复数该共享电极,该共享电极片在相邻之共享电极间延伸,在列方向接邻之显示单元间连续设置该个别电极片,而且设置对复数共享电极依次施加显示脉波之各时间区,作为单位顺序,对该个别电极片施加放电控制脉波,使得各显示单元点亮或非点亮。
Abstract in simplified Chinese:一种具有以阳极、阴极、和位址电极形成三维矩阵布线排列之等离子显示设备,其可在该等阳极与位址电极间引发写入放电,以便能暂时将写入电荷存储在一介电层上面,以及其可藉将一持续电压加至该等阴极上面,以使上述写入能够电荷放电,而做为一辅助放电,因而可使该等阳极与阴极间能够诱发一主放电。
Abstract:
Disclosed is a method for measuring luminance of each of entire pixels two-dimensionally arranged in a light-emitting display panel at regular intervals, using an image sensor in which light receiving elements are two-dimensionally arranged at regular intervals, the method including: providing an optical lens between the light-emitting display panel and the image sensor, and adjusting distances between the light-emitting display panel, the image sensor, and the optical lens by setting intervals of images of the entire pixels to be N times as large as intervals of the light receiving pixels, where N is a natural number, the images being to be formed on a light receiving surface of the image sensor through the optical lens; displaying, on the light-emitting display panel, a display pattern in which predetermined pixels from among the entire pixels produce a luminescence; and measuring the luminance of the predetermined pixels, using the light receiving elements.
Abstract:
The liquid crystal display device (1) of the present invention includes a liquid crystal display panel (3) and a backlight (2). In the backlight (2), a plurality of plasma tubes (22) are employed as light sources. The backlight (2) includes: a substrate (21) and; an array structure (23) in which the plurality of plasma tubes (22) are provided, in an array, on the substrate (21). A surface of the array structure (23) opposite to a surface facing the substrate (21) serves as a light emitting section (29) that irradiates the liquid crystal display panel (3). Since the backlight includes plasma tubes serving as the light sources, it is possible to achieve a thinner liquid crystal display device that carries out a high-definition image display in spite of its thin thickness.
Abstract:
A lighting element (1) containing a dielectric layer (5) of a metal oxide with a front surface and a back surface, where the dielectric layer (5) contains an arrangement of elongated pores (8) extending between front and back surfaces through the dielectric layer (5) and the pores (8) are open to the front surface, and a base electrode (7) made from an electrically conductive material is arranged on the back surface, and in the pores (8) are arranged emitter rods (4) of an electrically conductive material, and a translucent layer of counter-electrode (2) of an electrically conductive material is arranged over the front surface of the dielectric layer (5), and a layer of luminescent material (3) is arranged between the dielectric layer (5) and the base electrode (7). The layer of counter-electrode (2) is a part of the layer system of the lighting element (1), where the dielectric layer (5) has the function of a spacer and separates the base electrode (7) from the counter-electrode (2).
Abstract:
A plasma panel used as a light source of a display panel includes a first substrate having a first surface, a second substrate positioned above the first substrate, a plurality of electrode pairs extending along a first direction on the first surface, and a plurality of conductive spacers. Each of the electrode pairs includes a first electrode and a second electrode. The conductive spacers are formed on the first electrode and the second electrode for performing a discharge of opposed electrodes and supporting the second substrate.
Abstract:
A full color fiber plasma display device includes two glass plates sandwiched around a top fiber array and a bottom fiber array. The top and bottom fiber arrays are substantially orthogonal and define a structure of the display, with the top fiber array disposed on a side facing towards a viewer. The top fiber array includes identical top fibers, each top fiber including two sustain electrodes located near a surface of the top fiber on a side facing away from the viewer. A thin dielectric layer separates the sustain electrodes from the plasma channel formed by a bottom fiber array. The bottom fiber array includes three alternating bottom fibers, each bottom fiber including a pair of barrier ribs that define the plasma channel, an address electrode located near a surface of the plasma channel, and a phosphor layer coating on the surface of the plasma channel, wherein a luminescent color of the phosphor coating in each of the three alternating bottom fibers represents a subpixel color of the plasma display. Each subpixel is formed by a crossing of one top fiber and one corresponding bottom fiber. The plasma display is hermetically sealed with a glass frit. The sustain and address electrodes are brought out through the glass frit for direct connection to a drive control system.
Abstract:
Disclosed is an AC type plasma display panel for back light of liquid crystal display device. The disclosed comprises a rear substrate and a front substrate arranged opposite to each other with a predetermined distance; seal paste for sealing the edges of the substrates; a pair of discharge electrodes interposed between the rear substrate and the front substrate, having a plurality of holes and separated with a predetermined distance in a state of no contact with the substrates; and a plurality of spacers interposed between the rear substrate and discharge electrodes and between the front substrate and discharge electrodes in order to maintain distances.
Abstract:
A flat panel display, such as a head mounted display, and a process for its manufacture are disclosed. Essentially, the flat panel display comprises separately manufactured flat panels including a display material and driver chips that are bump-bonded to the flat panels preferably by using flip chip technology. The flat panel display is particularly applicable to miniature display applications and is characterized by being rugged yet reliable, in color but with good luminescence across the spectrum of the primary colors of red, blue and green. Pixels preferably are addressed by passive matrix activation. Preferably, the display material of the flat panels is a thin film electroluminescent material, a passive matrix liquid crystal material, a plasma display material or a field emission display material.