• Title/Summary/Keyword: SDI

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3D Display in Mobile Applications

  • Nam, Hui;Kim, Beom-Shik;Park, Chan-Young;Gu, Ja-Seng;Chung, Ho-Kyoon
    • 한국정보디스플레이학회:학술대회논문집
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    • 2006.08a
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    • pp.1561-1564
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    • 2006
  • SDI has been developing mobile 3D display for years. For mobile applications, we adapted parallax barrier method. We have developed auto stereoscopic swing 3D display in which people can 3D image in both portrait and landscape mode. Furthermore to increase 3D resolution, we have developed a high resolution 3D display using time division multiplexing parallax barrier method

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Microcrystalline Silicon for Thin Film Transistor

  • Milovzorov, D.;Kim, K.B.;Lisachenko, M.;Seo, J.W.;Lee, K.Y.;Chung, H.K.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2005.07b
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    • pp.1320-1322
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    • 2005
  • Microcrystalline silicon films were deposited on glass substrate by using plasma-enhanced chemical vapor deposition (PECVD) method. The crystalline volume fraction was estimated by means of Raman spectrometer with argon laser as light source. The high hydrogen dilution of silane gas was used for increase in content of crystal silicon phase.

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A New Structure and Driving Scheme of PDP for high luminous efficacy

  • Yi, Jeong-Doo;Kim, Joon-Yeon;Chae, Su-Yong;Kim, Tae-Woo;Cho, Sung-Chun;Chun, Byoung-Min;Kim, Jeong-Nam;Cho, Yoon-Hyoung
    • 한국정보디스플레이학회:학술대회논문집
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    • 2004.08a
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    • pp.51-54
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    • 2004
  • We have developed a new PDP cell structure called MARI(${\underline{M}}ulti$ ${\underline{A}}node$ for ${\underline{R}}eduction$ of ${\underline{I}}onic$ effect) and new driving scheme achieving a high luminous efficacy. The MARI PDP has middle electrode inserted between X and Y main electrodes. In the MARI PDP, reset and scan voltage is applied to middle electrode and sustain voltage is applied to X and Y electrode. Using a long gap sustain discharge we accomplished a high luminous efficacy. And we developed 42”full panel adopting MARI structure and new driving scheme and attained luminous efficacy of 2.35lm/W.

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Development of Novel Electrode Materials for Plasma Display Panel

  • Kim, Chul-Hong;Chae, So-Ra;Lee, Min-Hee;Jeong, Hyun-Mi;Kim, Beom-Kwon;Heo, Eun-Gi;Choe, Deok-Hyeon;Lee, Byung-Hak
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.1437-1440
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    • 2008
  • In this paper, we mainly deal with metallic electrode materials and patterning processing of plasma display panels. We focus on the recent development status, where low cost and high performance electrode materials such as Ag-based single-layered bus, low cost-in-use and anti-migration address electrodes are briefly introduced. The technological trends and further works on novel electrode materials and processing are also discussed.

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Optimization of address delay time in PDP by controlling the MgO characteristics

  • Jeong, Sang-Cheol;Jeong, Jong-In;Kim, Jeong-Jun;Song, Min-Ki;Kim, Ki-Bum;Mo, Bu-Kyung;Woun, Yong-Kyun;Yoon, Chang-Bun
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.965-969
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    • 2008
  • MgO thin film is widely used in PDP panel for protecting the dielectric layer and making firing voltage low. In this paper, the MgO thin film and discharge characteristics was analyzed as hydrogen flow rate increasing. Using hydrogen in deposition chamber makes add delay time of PDP module longer or shorter. It is the reason why thin film surface layer thickness on the MgO surface changes.

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High Performance 2.2 inch Full-Color AMOLED Display for Mobile Phone

  • Kim, H.K.;Suh, M.S.;Lee, K.S.;Eum, G.M.;Chung, J.T.;Oh, C.Y.;Kim, B.H.;Chung, H.K.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2002.08a
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    • pp.325-328
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    • 2002
  • We developed a high performance 2.2" active matrix OLED display for IMT-2000 mobile phone. Scan and Data driver circuits were integrated on the glass substrate, using low temperature poly-Si(LTPS) TFT CMOS technology. High efficiency EL materials were employed to the panel for low power consumption. Peak luminescence of the panel was higher than 250cd/$m^2$ with power consumption of 200mW.

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A New Structure and Driving Scheme of PDP for High Luminous Efficacy

  • Yi, Jeong-Doo;Kim, Joon-Yeon;Chae, Su-Yong;Kim, Tae-Woo;Cho, Sung-Chun;Chun, Byoung-Min;Kim, Jeong-Nam;Cho, Yoon-Hyoung
    • Journal of Information Display
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    • v.5 no.2
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    • pp.10-13
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    • 2004
  • We have developed a new PDP cell structure called MARI(Multi Anode for Reduction of Ionic effect) and new driving scheme achieving a high luminous efficacy. The MARI PDP has middle electrode inserted between X and Y main electrodes. In the MARI PDP, reset and scan voltage is applied to middle electrode and sustain voltage is applied to X and Y electrode. Using a long gap sustain discharge we accomplished a high luminous efficacy. And we developed 42"full panel adopting MARI structure and new driving scheme and attained luminous efficacy of 2.35 lm/W.

Estimation of the Optimum Installation Depth of Soil Moisture Sensor in an Automatic Subsurface Drip Irrigation System for Greenhouse Cucumber (시설오이 지중관비시 자동관수센서의 적정 매설깊이)

  • Lim, Tae-Jun;Kim, Ki-In;Park, Jin-Myeon;Noh, Jae-Seung
    • Korean Journal of Soil Science and Fertilizer
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    • v.46 no.2
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    • pp.99-104
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    • 2013
  • Vegetables production in greenhouse are typically intensely managed with high inputs of fertilizers and irrigation water, which increases the risk of ground-water nitrate contamination. In 2010 and 2011, a study was conducted to determine the appropriate depth of soil moisture sensor for automatic irrigation control to use water and nitrogen efficiently under subsurface drip irrigation (SDI) systems. The irrigation line for SDI placed 30 cm below soil surface and tensiometer was used as soil moisture sensor. Three tensiometer treatments placed at 10 (SDI-T10), 20 (SDI-T20) and 30 cm (SDI-T30) depths below soil surface under SDI. These are also compared to SUR-T20 treatment where tensiometer placed at 20 cm below soil surface under surface drip irrigation (SUR) systems. The growth of cucumber was not statistically different between SUR and SDI without SDI-T30 treatment. Fruit yields (Mg/ha) were 57.0 and 56.9 (SDI-T10), 56.0 and 60.5 (SDI-T20), 40.9 and 41.2 (SDI-T30) and 56.6 and 54.3 (SUR-T20) for 2010 and 2011, respectively. Slightly higher total yield was observed in tensiometer placed 20 cm below the soil surface, although no significant differences were found between SDI-T10 and SDI-T20 under SDI treatments. In addition, nitrogen application rates and daily irrigation rates were lowest in SDI-T20 compared with other SDIs and SUR treatments. Nitrogen and daily irrigation application under SDI-T20 was lower than that under SUR-T20 by 6.0%. These findings suggested tensiometer 20 cm depth under SDI systems was best for cucumber production in greenhouse.

Triode-Type Field Emission Displays with Carbon Nanotube Emitters

  • You, J.H.;Lee, C.G.;Jung, J.E.;Jin, Y.W.;Jo, S.H.;Nam, J.W.;Kim, J.W.;Lee, J.S.;Jang, J.E.;Park, N.S.;Cha, J.C.;Chi, E.J.;Lee, S.J.;Cha, S.N.;Park, Y.J.;Ko, T.Y.;Choi, J.H.;Lee, S.J.;Hwang, S.Y.;Chung, D.S.;Park, S.H.;Kim, J.M.
    • Journal of Information Display
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    • v.2 no.3
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    • pp.48-53
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    • 2001
  • Carbon nanotube emitters, prepared by screen printing, have demonstrated a great potential towards low-cost, largearea field emission displays. Carbon nanotube paste, essential to the screen printing technology, was formulated to exhibit low threshold electric fields as well as an emission uniformity over a large area. Two different types of triode structures, normal gate and undergate, have been investigated, leading us to the optimal structure designing. These carbon nanotube FEDs demonstrated color separation and high brightness over 300 $cd/m^2$ at a video-speed operation of moving images. Our recent developments are discussed in details.

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Novel structure for a full-color AMOLED using a blue common layer (BCL)

  • Kim, Mu-Hyun;Chin, Byung-Doo;Suh, Min-Chul;Yang, Nam-Chul;Song, Myung-Won;Lee, Jae-Ho;Kang, Tae-Min;Lee, Seong-Taek;Kim, Hye-Dong;Park, Kang-Sung;Oh, Jun-Sik;Chung, Ho-Kyoon
    • 한국정보디스플레이학회:학술대회논문집
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    • 2005.07a
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    • pp.797-798
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    • 2005
  • We report a novel structure for a full-color AMOLED (Active Matrix Organic Light Emitting Diode) eliminating the patterning process of a blue emitting layer. The patterning of the three primary colors, RGB, is a key technology in the OLED fabrication process. Conventional full color AMOLED containing RGB layers includes the three opportunities of the defects to make an accurate position and fine resolution using various technologies such as fine metal mask, ink-jet printing and laser-induced transfer system. We can skip the blue patterning step by simply stacking the blue layer as a common layer to the whole active area after pixelizing two primary colors, RG, in the conventional small molecular OLED structure. The red and green pixel showed equivalent performances without any contribution of the blue emission.

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