Photoluminescent liquid crystal display
    43.
    发明申请
    Photoluminescent liquid crystal display 审中-公开
    发光液晶显示屏

    公开(公告)号:US20060244367A1

    公开(公告)日:2006-11-02

    申请号:US11412753

    申请日:2006-04-27

    CPC classification number: G02F1/133617 G02F2201/086

    Abstract: A photoluminescent liquid crystal display (PL-LCD) includes: a front plate and a rear plate; liquid crystals disposed between the front and rear plates; an electrode that is disposed on an inner surface of each of the front and rear plates and forms an electric field in the liquid crystals; an emitting layer that is formed on the front plate and emits visible light by being excited by light having a wavelength of about 390 nm to about 410 nm; a light source unit that is formed on a rear side of the rear plate and includes a lamp emitting near blue-UV light having a wavelength of about 390 nm to about 410 nm toward the emitting layer; and a UV filter blocking UV rays in ambient light from entering a front side of the front plate.

    Abstract translation: 光致发光液晶显示器(PL-LCD)包括:前板和后板; 设置在前板和后板之间的液晶; 电极,其设置在前板和后板中的每一个的内表面上并在液晶中形成电场; 形成在前板上并通过被波长为约390nm至约410nm的光激发而发出可见光的发光层; 光源单元,其形成在所述后板的后侧,并且包括朝向所述发光层发射波长为约390nm至约410nm的近蓝紫外光的灯; 和紫外线过滤器阻挡环境光中的紫外线进入前板的前侧。

    Plasma display panel utilizing carbon nanotubes and method of manufacturing the front panel of the plasma display panel
    44.
    发明授权
    Plasma display panel utilizing carbon nanotubes and method of manufacturing the front panel of the plasma display panel 失效
    使用碳纳米管的等离子体显示面板和制造等离子体显示面板前面板的方法

    公开(公告)号:US06933674B2

    公开(公告)日:2005-08-23

    申请号:US10412420

    申请日:2003-04-14

    CPC classification number: B82Y10/00 H01J11/12 H01J11/40 Y10S977/952

    Abstract: A plasma display panel using carbon nanotubes is provided. In the front panel of the plasma display panel, transparent electrodes are formed as strips on the glass substrate. Bus electrodes are each formed as strips along the outer edge on the upper surface of each of the transparent electrodes and in parallel to the transparent electrodes. A dielectric layer is formed on part of the glass substrate, parts of the transparent electrodes, and the bus electrodes. Carbon nanotube strips are aligned on the dielectric layer such that the carbon nanotube strips face the transparent electrodes. A protective layer is formed on part of the dielectric layer and the carbon nanotube strips. Accordingly, the secondary electron emission characteristic is improved, resulting in a high-quality display screen having a high luminous efficiency and a high contrast ratio.

    Abstract translation: 提供了使用碳纳米管的等离子体显示面板。 在等离子体显示面板的前面板中,透明电极在玻璃基板上形成为条状。 总线电极分别沿着每个透明电极的上表面上的外缘形成为平行于透明电极的条带。 在玻璃基板的一部分,透明电极的一部分和总线电极上形成介电层。 碳纳米管条在电介质层上排列,使得碳纳米管条面对透明电极。 在介电层和碳纳米管条的一部分上形成保护层。 因此,二次电子发射特性得到改善,导致具有高发光效率和高对比度的高质量显示屏。

    Plasma display panel using excimer gas

    公开(公告)号:US06628088B2

    公开(公告)日:2003-09-30

    申请号:US09876083

    申请日:2001-06-08

    CPC classification number: H01J11/10 H01J11/50

    Abstract: A plasma display panel using excimer gas is provided. Mixed excimer gases containing xenon (Xe) used to form excimer gas and iodine (I) as a halogen, are injected into the plasma display panel to be used as discharge gases. At least one selected from helium (He), neon (Ne), argon (Ar) and krypton (Kr) can be used as a buffering gas for the discharging gases. At least some of ultraviolet rays originate from the excimer gases and at least some of iodine is supplied from I2. The partial pressure of molecular iodine is less than or equal to a saturated vapor pressure, at operating temperature of the plasma display panel, at room temperature and at 0° C., respectively. The partial pressure of iodine inside the plasma display panel is in the range of 0.01 to 50% based on the total pressure of excimer gases.

    Phosphate nano phosphor and method of preparing the same
    48.
    发明授权
    Phosphate nano phosphor and method of preparing the same 有权
    磷酸盐纳米磷光体及其制备方法

    公开(公告)号:US08119029B2

    公开(公告)日:2012-02-21

    申请号:US12262429

    申请日:2008-10-31

    CPC classification number: C09K11/7738 C09K11/73 C09K11/76

    Abstract: Provided is a phosphate nano phosphor with a mean particle diameter of 100 to 3000 nm. Also provided is a method of preparing a nano phosphor, the method comprising: dissolving two or more species of metal precursor compounds in water, and then adjusting the pH to prepare an aqueous solution of pH 4-10; coprecipitating the aqueous solution by mixing with a phosphate precursor aqueous solution with the pH adjusted to 7-12; and redispersing the particles obtained from the coprecipitation in water or polyol solvent, and then heat treating the particles. The phosphate nano phosphor according to the present invention has superior light emission efficiency compared with conventional nano phosphors.

    Abstract translation: 提供平均粒径为100〜3000nm的磷酸盐纳米磷光体。 还提供了制备纳米磷光体的方法,所述方法包括:将两种或更多种金属前体化合物溶解在水中,然后调节pH以制备pH 4-10的水溶液; 通过与pH调节至7-12的磷酸盐前体水溶液混合来共沉淀水溶液; 并将从共沉淀得到的颗粒再分散在水或多元醇溶剂中,然后热处理颗粒。 根据本发明的磷酸盐纳米磷光体与常规纳米磷光体相比具有优异的发光效率。

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