• Title/Summary/Keyword: Blue and white emission

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A study on the simplified fabrication structure for the multi-color OLED display

  • Baek, H.I.;Kwon, D.S.;Lee, C.H.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2006.08a
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    • pp.1046-1049
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    • 2006
  • We proposed a simplified fabrication structure and method which can provide separate Red (R), Green (G), Blue (B), and White (W) OLED pixels with 2 metal-mask changes in emitting layer fabrication inspired from the structure of multi-layer white OLED and carrier blocking mechanism. A red emission layer for the R and W pixel with 1st mask, and then a blue emission layer with hole blocking layer for the B and W pixel with 2nd mask, and finally a common green emission layer were deposited sequentially. We expect that this concept would be very useful to the actual fabrication of multi-color OLED display although additional optimization is needed.

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Improvement In recombination at a two-emission-layers interface For White-light-emitting organic electroluminescent device

  • Song, Tae-Joon;Ko, Myung-Soo;Lee, Gyu-Chul;Cho, Sung-Min
    • 한국정보디스플레이학회:학술대회논문집
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    • 2003.07a
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    • pp.928-931
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    • 2003
  • In order to realize full color display, two approaches were used. The first method is the patterning of red, green, and blue emitters using a selective deposition. Another approach is based on a white-emitting diode, from which the three primary colors could be obtained by micro-patterned color filters. White-light-emitting organic light emitting devices (OLEDs) are attracting much attention recently due to potential applications such as backlights in liquid crystal displays (LCDs) or other illumination purposes. In order for the white OLEDs to be used as backlights in LCDs, the light emission should be bright and have Commission Internationale d'Eclairage (CIE) chromaticity coordinates of (0.33, 0.33). For obtaining white emission from OLEDs, different colours should be mixed with proper balances even though there are a few different methods for mixing colors. In this study, we will report a white organic electroluminescent device using exciton diffusion length concept.

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White Electroluminescent Device by ZnS: Mn, Cu, Cl Phosphors

  • Kim, Jong-Su;Park, Je-Hong;Lee, Sung-Hun;Kim, Gwang-Chul;Kwon, Ae-Kyung;Park, Hong-Lee
    • Journal of the Semiconductor & Display Technology
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    • v.5 no.3 s.16
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    • pp.1-4
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    • 2006
  • White-light-emitting ZnS:Mn, Cu, Cl phosphors with spherical shape and the size of $20\;{\mu}m$ are successfully synthesized. They have the double phases of cubic and hexagonal structures. They are applied to electroluminescent (EL) devices by silk screen method with the following structure: $electrode/BaTiO_3$ insulator layer ($50{\sim}60\;{\mu}m$)/ ZnS:Mn, Cu, Cl phosphor layer ($30{\sim}50\;{\mu}m$)/ITO glass. The EL devices are driven with the voltage of 100 V and the frequency of 400 Hz. The EL devices show the three emission peaks. The blue and green emission bands are originated from $CICu^{2+}$ transition and $ClCu^+$ transition, respectively. The yellow emission band results from $^4T^6A$ transition of $Mn^{2+}$ ion. As an increase of Cu concentrations, the blue and green emission intensities decrease whereas the yellow emission intensity increases; the quality becomes warm white. It is due to the energy transfer from the blue and green bands to the yellow band.

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The Optical Properties of(Y1-xGdx)3-z(Al1-yGay)5O12:CezPhosphors for White LED

  • Huh, Young-Duk;Cho, Young-Shik;Do, Young-Rag
    • Bulletin of the Korean Chemical Society
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    • v.23 no.10
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    • pp.1435-1454
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    • 2002
  • Bright yellow ${(Y_{1-x}Gd_x)}_{3-z}{(Al_{1-y}Ga_y)}_5O_{12}:Ce_z$ phosphors were synthesized. White LED was obtained by the combination of non-absorbed blue emission from a blue L ED itself and yellow emission from ${(Y_{1-x}Gd_x)}_{3-z}{(Al_{1-y}Ga_y)}_5O_{12}:Ce_z$ phosphors. The crystal structures and optical properties of ${(Y_{1-x}Gd_x)}_{3-z}{(Al_{1-y}Ga_y)}_5O_{12}:Ce_z$ phosphors were investigated.

Improvement of Efficiency Varying Ratio in Hybrid White OLED (도핑 비율에 따른 하이브리드 백색 OLED의 효율 향상에 관한 연구)

  • Kim, Nam-Kyu;Shin, Hoon-Kyu;Kwon, Young-Soo
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.27 no.9
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    • pp.571-575
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    • 2014
  • We synthesized new materials of $Zn(HPB)_2$ and Ir-complexes as blue or red emitting material. We fabricated white Organic Light Emitting Diodes (OLED) by using $Zn(HPB)_2$ for the blue emitting layer, Ir-complexes for the red emitting layer and $Alq_3$ for the green emitting layer. We fabricated white OLED by using double emitting layers of $Zn(HPB)_2$:Ir-complexes and $Alq_3$. The doping rate of Ir-complexes was varied, such as 0.2%, 0.4%, 0.6%, and 0.8%, respectively. When the doping rate of $Zn(HPB)_2$:Ir-complexes was 0.6%, white emission was achieved. The Commission Internationale de l'Eclairage (CIE) coordinates of the white emission was (0.322, 0.312).

The Fabrication of the White Organic Light Emitting Devices by varying the Doping Concentrations of DCM in ITO/$\alpha$-NPD:DCM/$\alpha$-NPD/BCP/$Alq_3$/Al (ITO/$\alpha$-NPD:DCM/$\alpha$-NPD/BCP/$Alq_3$/Al 구조에서의 DCM의 도핑농도에 따른 유기 백색발광소자 구현)

  • 최성진;조재영;윤석범;오환술
    • Proceedings of the IEEK Conference
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    • 2003.07b
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    • pp.999-1002
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    • 2003
  • In this study, the white organic light emitting device was fabricated using ITO/a-NPD:DCM/a-NPD/BCP/Alq3/Al structure. Blue emission by a-NPD and orange emission by energy transfer between a-NPD and DCM embodied the white emission. The optimal structure of the white OLED is ITO/a-NPD:DCM(50$\square$)/a-NPD(150$\AA$)/BCP(100$\square$)/Alq$_3$(200$\square$)/Al. We varied the doping concentration of DCM properly and obtained high purity white emitting light. The CIE coordinate and maximum luminance of the devices was obtained (0.310, 0.333) and 400cd/$m^2$ at 11Volt.

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The Study of $Eu^{2+}$-activated Calcium Aluminium Silicate Phosphors for White UV-LED (백색 UV-LED를 위한 $Eu^{2+}$-활성화 칼슘 알루미늄 실리케이트 형광체 연구)

  • Hwang, Jung-Ha;Jang, Bo-Yun;Park, Joo-Seok
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2006.06a
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    • pp.32-35
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    • 2006
  • For the white UV-LED applications, $Eu^{2+}$-activated calcium aluminium silicate phosphors were synthesized for the first time and the structures and luminescence characteristics of these phosphors were investigated. The phosphors in this study emitted blue. green or blue-green light depending on the starting materials for synthesis. In addition, the structure was also changed when the different starting materials were used. When CaO and $CaCO_3$ was used as a starting material. tetragonal $Ca_2Al_2SiO_7$ was formed and blue-green and pure green light was emitted. respectively. However. in the case of $CaSiO_3$, triclinic $CaAl_2Si2O_8$ was formed and only pure blue emission was detected. The maximum emission intensity was obtained from $CaAl_2Si_2O_8:Eu^{2+}$ phosphors, which intensity was about 1.4 times higher than that of YAG:$Ce^{3+}$ phosphor used for blue LED.

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Low-Molecular-Weight White Organic-Light-Emitting-Devices using Direct Color Mixing Method

  • Lee, Sung-Soo;Song, Tae-Joon;Ko, Myung-Soo;Cho, Sung-Min
    • Journal of Information Display
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    • v.3 no.2
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    • pp.6-12
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    • 2002
  • In order to achieve white emission from organic light emitting devices (OLEDs), five distinct structures were fabricated and tested. The white emission was obtained using two different color-emitting materials (yellow from rubrene-doped $Alq_3$ and blue from DPVBi) with or without a carrier-blocking layer. For enhancing the red emission, two types of devices with three-color emitting materials were fabricated. The white emission, close to the CIE coordinate of (0.3,0.3), was achieved by using two blocking layers as well that as without a blocking layer. This paper covers the subject of controlling the location of exciton recombination zone. It has been found that there is a trade-off in that the devices with three color emitting layers do not show as much luminescence efficiency compared to those with two color emitting layers, but rather, show distinct red emission in the resultant emission spectra. The highest power efficiency was measured to be 1.15lm/W at 2,000 $cd/m^2$ for a structure with two color-emitting layers.

The Fabrication and Analysis of the White Organic Electroluminescent Devices by varying the Doping Concentrations of Rubrene and the Thickness of NPB layer (Rubrene의 도핑량과 NPB층의 두께변화에 따른 백색 유기전계발광소자 제작 및 분석)

  • 조재영;김중연;최성진;강명구;신선호;주성후;오환술
    • Proceedings of the IEEK Conference
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    • 2002.06b
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    • pp.37-40
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    • 2002
  • We have been fabricated the white organic electroluminescent devices using vacuum evaporation method. The structure of the white OELD is Glass/1T0/NPB/DPVBi/AI $q_{3:}$ Ru bren e/B CP/Alq $q_3$/Al. We have got the white emission with two-wavelength that is mixing blue emission in DPVBi layer and orange emission in Al $q_{3:}$Rubrene layer by varying tile doping concentrations of Rubrene and the thickness of NPB layer.yer.

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White organic light-emitting diodes with various spacers inserted between blue and red emissive layers (Spacer에 따른 백색 유기 전기 발광 소자의 전기적 특성에 관한 연구)

  • Park, Jung-Hyun;Lee, Seok-Jae;Kim, Gu-Young;Seo, Ji-Hyun;Seo, Ji-Hoon;Yoon, Seung-Soo;Lee, Seung-Hee;Kim, Young-Kwan
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.11a
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    • pp.402-403
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    • 2007
  • High-efficiency white organic light-emitting diodes (WOLEDs) were fabricated with two emissive layers and a spacer was sandwiched between two phosphorescent dyes which were, bis(3,5-Difluoro-2-(2-pyridyl)phenyl-(2-carboxypyridyl) iridium III (FIrpic) as the blue emission and bis(5-acetyl-2-phenylpyridinato-N,C2') acetylacetonate $((acppy)_2Ir(acac))$ as the red emission. This spacer effectively prevented a triple-triple energy transfer between the two phosphorescent emissive layers with blue and red emission that was showed a improved lifetime. The white device showed Commission Internationale De L'Eclairage $(CIE_{x,y})$ coordinates of (0.33, 0.42) at $22400\;cd/m^2$, a maximum luminance of $27300\;cd/m^2\;at\;0.388\;mA/cm^2$, and a maximum luminous efficiency of 26.9 cd/A.

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