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    • 2. 发明申请
    • LATERAL FIELD EMISSION DEVICE
    • 侧场发射装置
    • US20100244661A1
    • 2010-09-30
    • US11477938
    • 2006-06-30
    • Jung-Yu LiShih-Pu ChenYi-Ping LinWei-Chin Lin
    • Jung-Yu LiShih-Pu ChenYi-Ping LinWei-Chin Lin
    • H01J1/62
    • H01J1/74H01J29/04H01J29/08H01J31/127H01J2329/0407H01J2329/08H01J2329/18
    • A field emission device has pixels with cathode and anode provided on the same plane, so that electrons directly penetrate an independently provided fluorescent powder layer to produce light, giving the display the advantages of easy focusing, no dark spots, high brightness, and enhanced light emitting performance. Since the light produced by the fluorescent powder layer is not blocked by the anode, the problem of charge accumulation on the fluorescent powder layer is avoided, and it is not necessary to use expensive light-transmittable conducting glass as the anode. With the cathode and the anode located at the same plane, it is not necessary to use a high precision spacer to maintain a fixed distance between the cathode and the anode, enabling the device to be manufactured at reduced cost and high good yield.
    • 场发射器件具有设置在同一平面上的阴极和阳极的像素,使得电子直接穿透独立提供的荧光粉层以产生光,使显示器具有容易聚焦,无黑点,高亮度和增强的光的优点 发射性能。 由于由荧光粉层产生的光不被阳极阻挡,所以避免了荧光粉层上的电荷积聚的问题,并且不需要昂贵的透光导电玻璃作为阳极。 在阴极和阳极位于同一平面上的情况下,不需要使用高精度间隔物来保持阴极和阳极之间的固定距离,从而能够以降低的成本和高的良率获得器件的制造。
    • 6. 发明授权
    • Lateral field emission device
    • 侧面场发射装置
    • US07839070B2
    • 2010-11-23
    • US11477938
    • 2006-06-30
    • Jung-Yu LiShih-Pu ChenYi-Ping LinWei-Chih Lin
    • Jung-Yu LiShih-Pu ChenYi-Ping LinWei-Chih Lin
    • H01J63/04
    • H01J1/74H01J29/04H01J29/08H01J31/127H01J2329/0407H01J2329/08H01J2329/18
    • A field emission device has pixels with cathode and anode provided on the same plane, so that electrons directly penetrate an independently provided fluorescent powder layer to produce light, giving the display the advantages of easy focusing, no dark spots, high brightness, and enhanced light emitting performance. Since the light produced by the fluorescent powder layer is not blocked by the anode, the problem of charge accumulation on the fluorescent powder layer is avoided, and it is not necessary to use expensive light-transmittable conducting glass as the anode. With the cathode and the anode located at the same plane, it is not necessary to use a high precision spacer to maintain a fixed distance between the cathode and the anode, enabling the device to be manufactured at reduced cost and high good yield.
    • 场发射器件具有设置在同一平面上的阴极和阳极的像素,使得电子直接穿透独立提供的荧光粉层以产生光,使显示器具有容易聚焦,无黑点,高亮度和增强的光的优点 发射性能。 由于由荧光粉层产生的光不被阳极阻挡,所以避免了荧光粉层上的电荷积聚的问题,并且不需要昂贵的透光导电玻璃作为阳极。 在阴极和阳极位于同一平面上的情况下,不需要使用高精度间隔物来保持阴极和阳极之间的固定距离,从而能够以降低的成本和高的良率获得器件的制造。
    • 7. 发明申请
    • SYSTEM FOR INSPECTING DEFECTS OF PANEL DEVICE
    • 检查面板设备缺陷的系统
    • US20090244527A1
    • 2009-10-01
    • US12144648
    • 2008-06-24
    • Jung-Yu LiShih-Pu ChenYi-Ping LinLian-Yi Cho
    • Jung-Yu LiShih-Pu ChenYi-Ping LinLian-Yi Cho
    • G01N21/88
    • G01N21/8803
    • System for inspecting defects of panel device includes a to-be-inspected device, a platform for holding the to-be-inspected device, a power unit, and a light source apparatus. The light source apparatus is controlled by the power unit to provide an inspection light to the to-be-inspected device for inspecting whether or not having defects. The light source apparatus includes a cathode structure, an anode structure, a fluorescent layer, and a low-pressure gas layer. The fluorescent layer is located between the cathode structure and the anode structure. The low-pressure gas layer is filled between the cathode structure and the anode structure, for inducing the cathode to emit electrons uniformly. The low-pressure gas layer has an electron mean free path, allowing at least enough electrons to directly hit the fluorescent layer under an operating voltage.
    • 用于检查面板装置的缺陷的系统包括被检查装置,用于保持被检查装置的平台,动力单元和光源装置。 该光源装置由动力单元控制,以向被检查装置提供检查光,以检查是否有缺陷。 光源装置包括阴极结构,阳极结构,荧光层和低压气体层。 荧光层位于阴极结构和阳极结构之间。 低压气体层被填充在阴极结构和阳极结构之间,以使阴极均匀地发射电子。 低压气体层具有电子平均自由程,允许至少足够的电子在工作电压下直接击中荧光层。