• 제목/요약/키워드: top emission OLED

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전면 유기발광 다이오드 제작시 Mg:Ag 캐소드 최적화 및 LiF 전자주입층 유무에 따른 소자 특성에 관한 연구 (Optimization of Mg:Ag Cathodes and Effect of LiF Electron Injection Layer on the Characteristics of Top Emission Organic Light Emitting Diodes)

  • 송민석;권상직;조의식
    • 반도체디스플레이기술학회지
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    • 제21권1호
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    • pp.71-74
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    • 2022
  • For the process simplification in the fabrication of organic light emitting diode(OLED), top emission OLED (TEOLED) was fabricated without lithium fluoride(LiF) used as an electron injection layer (EIL). After co-deposition of Mg and Ag with a different process conditions, a cathode material adjacent to EIL was optimized when Mg and Ag have a ratio of 1:9 considering sheet resistance and transmittance. From the energy band diagram of TEOLED, band gap difference between Trisaluminium (Alq3) and Mg:Ag cathode show the difference of 0.4 eV according to the usage of LiF The fabricated TEOLED without LiF showed the improvement of 5.2 % and 2.7 % in the luminance and the current density comparing that with LiF. The results show there is no significant difference in OLED characteristics regardless of LIF layer in the TEOLED structures.

전면 발광 OLED의 전기 광학적 특성 (Electrical and Optical Characteristics of Top-emission OLED)

  • 신은철;안희철;한원근;장경욱;최성재;이호식;송민종;김태완
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 춘계학술대회 논문집
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    • pp.22-23
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    • 2008
  • 본 연구에서는 전면 유기 발광소자(TE-OLED)를 제작하여 전기 광학적 특성을 연구하였다. 전면 발광 OLED의 투명 전극으로 사용된 Al과 Ag의 박막 두께에 따른 투과율과 면저항값은 다음과 같이 나타났다. 파장 520nm의 기준으로 Al 금속 박막의 두께가 10nm 이하여야 50% 투과율을 보였고, 반면 Ag는 25nm 이하로 나타났다. 면저항값은 박막두께 20nm 기준으로 Al은 약 $40\Omega/\square$, Ag는 $10\Omega/\square$이하로 나타났다. 전면발광 방식의 시야각에 따른 빛의 세기는 cos $60^{\circ}$ 일 때 0.1로, TE-OLED는 시야각이 증가하였을 때 현저히 감소되는 것을 볼 수 있다. TE-OLED의 시야각의 증가에 따른 EL-peak 또한 약 520nm의 파장대에서 약 500nm으로 변화하였다. 전면 발광 방식의 반폭치(FWHM)는 배면 발광 방식 보다 약 32nm정도 좁게 나타났다.

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High Contrast Top Emission OLED

  • Wood, R.;Kim, W.Y.
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2004년도 Asia Display / IMID 04
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    • pp.352-355
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    • 2004
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나노 셀 OLED의 열 분포 해석 (Thermal Distribution Analysis in Nano Cell OLED)

  • 장경욱
    • 한국전기전자재료학회논문지
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    • 제37권3호
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    • pp.309-313
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    • 2024
  • The key to determining the lifetime of OLED device is how much brightness can be maintained. It can be said that there are internal and external causes for the degradation of OLED devices. The most important cause of internal degradation is bonding and degradation in the excited state due to the electrochemical instability of organic materials. The structure of OLED modeled in this paper consists of a cathode layer, electron injection layer (EIL), electron transport layer (ETL), light emission layer, hole transport layer (HTL), hole injection layer (HIL), and anode layer on a glass substrate from top to bottom. It was confirmed that the temperature generated in OLED was distributed around the maximum of 343.15 K centered on the emission layer. It can be seen that the heat distribution generated in the presented OLED structure has an asymmetrically high temperature distribution toward the cathode, which is believed to be because the sizes of the cathode and positive electrode are asymmetric. Therefore, when designing OLED, it is believed that designing the structures of the cathode and anode electrodes as symmetrically as possible can ensure uniform heat distribution, maintain uniform luminance of OLED, and extend the lifetime. The thermal distribution of OLED was analyzed using the finite element method according to Comsol 5.2.

Long-lifetime Green Phosphorescent OLEDs for Low Power Displays

  • Weaver, Michael S.;Adamovich, Vadim I.;Xia, Sean C.;Fiordeliso, James J.;Kwong, Raymond C.;Brown, Julie J.;Lee, Kwan-Hee;Lim, Choon-Woo;Kim, Sung-Chul
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2009년도 9th International Meeting on Information Display
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    • pp.38-41
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    • 2009
  • We demonstrate a new commercial green phosphorescent organic light emitting device (OLED) in a bottom emission device and top emission microcavity. The bottom and top emitting phosphorescent OLEDs (PHOLED$^{TM}$s) had luminance efficiencies of 60cd/A and 137cd/A respectively, at a luminance of 1,000cd/$m^2$. The top emission microcavity was close to 1953 NTSC color requirements with 1931 CIE color coordinates of 0.231, 0.718. A record green PHOLED lifetime of >3,500hrs to LT95 from 4000cd/$m^2$ is demonstrated for the microcavity device.

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Correlation between optimized thicknesses of capping layer and thin metal electrode for efficient top-emitting blue organic light-emitting diodes

  • Hyunsu Cho;Chul Woong Joo;Byoung-Hwa Kwon;Chan-mo Kang;Sukyung Choi;Jin Wook Sin
    • ETRI Journal
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    • 제45권6호
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    • pp.1056-1064
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    • 2023
  • The optical properties of the materials composing organic light-emitting diodes (OLEDs) are considered when designing the optical structure of OLEDs. Optical design is related to the optical properties, such as the efficiency, emission spectra, and color coordinates of OLED devices because of the microcavity effect in top-emitting OLEDs. In this study, the properties of top-emitting blue OLEDs were optimized by adjusting the thicknesses of the thin metal layer and capping layer (CPL). Deep blue emission was achieved in an OLED structure with a second cavity length, even when the transmittance of the thin metal layer was high. The thin metal film thickness ranges applicable to OLEDs with a second microcavity structure are wide. Instead, the thickness of the thin metal layer determines the optimized thickness of the CPL for high efficiency. A thinner metal layer means that higher efficiency can be obtained in OLED devices with a second microcavity structure. In addition, OLEDs with a thinner metal layer showed less color change as a function of the viewing angle.

Top Emission Organic Light Emitting Diode with Transparent Cathode, Ba-Ag Double Layer

  • Lee, Chan-Jae;Moon, Dae-Gyu;Han, Jeong-In
    • Journal of Information Display
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    • 제7권3호
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    • pp.23-26
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    • 2006
  • We fabricated top emission organic light emitting diode (TEOLED) with transparent metal cathode Barium and Silver bilayer. Very thin Ba/Ag bilayer was deposited on the organic layer by thermal evaporation. This cathode showed high transmittance over 70% in visible range, and the device with a Ba-Ag has a low turn on voltage and good electrical properties.

투명 금속 음극을 이용한 전면발광 적색 인광 OLEDs의 전기 및 광학적 특성 (Electrical and Optical Properties of Red Phosphorescent Top Emission OLEDs with Transparent Metal Cathodes)

  • 김소연;하미영;문대규;이찬재;한정인
    • 한국전기전자재료학회논문지
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    • 제20권9호
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    • pp.802-807
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    • 2007
  • We have developed red phosphorescent top emission organic light-emitting diodes with transparent metal cathodes deposited by using thermal evaporation technique. Phosphorescent guest molecule, BtpIr(acac), was doped in host CBP for the red phosphorescent emission, Ca/Ag, Ba/Ag, and Mg/Ag double layers were used as cathode materials of top emission devices, which were composed of glass/Ni/2TNATA(15 nm)/${\alpha}$-NPD(35 nm)/CBP:BtpIr(acac)(40 nm, 10%)/BCP(5 nm)/$Alq_3$(5 nm)/cathodes. The optical transparencies of these metal cathodes strongly depend on underlying Ca, Ba, and Mg layers. These layers also strongly affect the electrical conduction and emission properties of the red phosphorescent top emission devices.

ALD 아르곤 퍼지유량에 따른 Al2O3박막 분석 및 유기발광 다이오드 봉지막 적용에 관한 연구 (A Study on the Al2O3 Thin Film According to ALD Argon Purge Flow Rate and Application to the Encapsulation of OLED )

  • 이동운;김기락;조의식;전용민;권상직
    • 반도체디스플레이기술학회지
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    • 제22권1호
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    • pp.23-27
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    • 2023
  • Organic light-emitting diode(OLED) is very thin organic films which are hundreds of nanometers. Unlike bottom-emission OLED(BEOLED), top-emission OLED(TEOLED) emits light out the front, opaque moisture absorbents or metal foils can't be used to prevent moisture and oxygen. And it is difficult to have flexible characteristics with glass encapsulation, so thin film encapsulation which can compensate for those two disadvantages is mainly used. In this study, Al2O3 thin films by atomic layer deposition(ALD) were examined by changing the argon gas purge flow rate and we applied this Al2O3 thin films to the encapsulation of TEOLED. Ag / ITO / N,N'-Di-[(1-naphthyl)-N,N'-diphenyl]-1,1'-biphenyl-4,4'-diamine / tris-(8-hydroxyquinoline) aluminum/ LiF / Mg:Ag (1:9) were used to fabricate OLED device. The characteristics such as brightness, current density, and power efficiency are compared. And it was confirmed that with a thickness of 40 nm Al2O3 thin film encapsulation process did not affect OLED properties. And it was enough to maintain a proper OLED operation for about 9 hours.

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Development of a 14.1 inch Full Color AMOLED Display with Top Emission Structure

  • Jung, J.H.;Goh, J.C.;Choi, B.R.;Chai, C.C.;Kim, H.;Lee, S.P.;Sung, U.C.;Ko, C.S.;Kim, N.D.;Chung, K.
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2005년도 International Meeting on Information Displayvol.I
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    • pp.793-796
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    • 2005
  • A structure and a design of device were developed to fabricate large-scale active matrix organic light-emitting diode (AMOLED) display with good color purity and high aperture ratio. With these technologies, we developed a full color 14.1 inch WXGA AMOLED display. For the integration of OLED on an active matrix a-Si TFT backplane, an efficient top emission OLED is essential since the TFT circuitry covers a large position of the pixel aperture. These technologies will enable up the OLED applications to larger size displays such as desktop monitors and TVs.

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