• Title/Summary/Keyword: TCTA

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Novel Host materials for Phosphorescent OLEDs with long lifetime

  • Kim, Young-Hoon;Yu, Eun-Sun;Kim, Nam-Soo;Jung, Sung-Hyun;Kim, Hyung-Sun;Lee, Ho-Jae;Kang, Eui-Su;Chae, Mi-Young;Chang, Tu-Won
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.549-552
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    • 2008
  • We have developed a novel bipolar host material with both electron and hole transporting characteristics. Since CGH(Cheil Green Host) has some electron transporting characteristics, it shows increased luminance efficiency in device including TCTA and without HBL(hole blocking layer:BAlq). Maximum power efficency of CGH was 27.4lm/W at the device structure ITO/DNTPD(60)/NPB(20)/TCTA(10)/EML(30)/Alq3(20)/LIF(1)/Al. We measured device performance again without HBL. The result of CGH showing 26.0lm/W is outstanding compared to that of CBP showing 19.1lm/W without holeblocking layer. We also measured lifetime and found to be 205hr at 3000nit, that is significant result compared to the life time of CBP device showing 82hr. CGH shows high device performance with holeblocking layer. Moreover, it shows better device performance and life time than those of CBP without holeblocking.

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Correlation between host materials and device performances of phosphorescent white organic light-emitting diodes with blue/orange/blue stacked emitting structure

  • Joo, Chul-Woong;Kim, Sung-Hyun;Yook, Kyoung-Soo;Jeon, Soon-Ok;Lee, Jun-Yeob
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.439-442
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    • 2008
  • A mixed host structure of TCTA and TPBI was used in orange emitting layer and host composition was critical to device performances of PHWOLEDs. PHWOLEDs with TPBI host in orange emitting layer showed high quantum efficiency of 10.3 % at $1000\;cd/m^2$ with little change of CIE coordinates of (0.32, 0.34) from $100\;cd/m^2$ to $10,000\;cd/m^2$.

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Excimer-Based White Phosphorescent OLEDs with High Efficiency

  • Yang, Xiaohui;Wang, Zixing;Madakuni, Sijesh;Li, Jian;Jabbour, Ghassan E.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.1520-1521
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    • 2008
  • There are several ways to demonstrate white organic light emitting diodes (OLEDs) for displays and solid state lighting applications. Among these approaches are the stacked three primary or two complementary colors light-emitting layers, multiple-doped emissive layer, and excimer and exciplex emission [1-10]. We report on white phosphorescent excimer devices by using two light emitting materials based on platinum complexes. These devices showed a peak EQE of 15.7%, with an EQE of 14.5% (17 lm/W) at $500\;cd/m^2$, and a noticeable improvement in both the CIE coordinates (0.381, 0.401) and CRI (81). Devices with the structure ITO/PEDOT:PSS/TCTA (30 nm)/26 mCPy: 12% FPt (10 nm) /26 mCPy: 2% Pt-4 (15 nm)/BCP (40 nm)/CsF/Al [device 1], ITO/PEDOT:PSS/TCTA (30 nm)/26 mCPy: 2% Pt-4 (15 nm)/26 mCPy: 12% FPt (10 nm)/BCP (40 nm)/CsF/Al [device 2], and ITO/PEDOT:PSS/TCTA (30 nm)/26 mCPy: 2% Pt-4: 12% FPt (25 nm)/BCP (40 nm)/CsF/Al [device 3] were fabricated. In these cases, the emissive layer was either the double-layer of 26 mCPy:12% FPt and 15 nm 26 mCPy: 2% Pt-4, or the single layer of 26mCPy with simultaneous doping of Pt-4 and FPt. Device characterization indicates that the CIE coordinates/CRI of device 2 were (0.341, 0.394)/75, (0.295, 0.365)/70 at 5 V and 7 V, respectively. Significant change in EL spectra with the drive voltage was observed for device 2 indicating a shift in the carrier recombination zone, while relatively stable EL spectra was observed for device 1. This indicates a better charge trapping in Pt-4 doped layers [10]. On the other hand, device 3 having a single light-emitting layer (doped simultaneously) emitted a board spectrum combining emission from the Pt-4 monomer and FPt excimer. Moreover, excellent color stability independent of the drive voltage was observed in this case. The CIE coordinates/CRI at 4 V ($40\;cd/m^2$) and 7 V ($7100\;cd/m^2$) were (0.441, 0.421)/83 and (0.440, 0.427)/81, respectively. A balance in the EL spectra can be further obtained by lowering the doping ratio of FPt. In this regard, devices with FPt concentration of 8% (denoted as device 4) were fabricated and characterized. A shift in the CIE coordinates of device 4 from (0.441, 0.421) to (0.382, 0.401) was observed due to an increase in the emission intensity ratio of Pt-4 monomer to FPt excimer. It is worth noting that the CRI values remained above 80 for such device structure. Moreover, a noticeable stability in the EL spectra with respect to changing bias voltage was measured indicating a uniform region for exciton formation. A summary of device characteristics for all cases discussed above is shown in table 1. The forward light output in each case is approximately $500\;cd/m^2$. Other parameters listed are driving voltage (Bias), current density (J), external quantum efficiency (EQE), power efficiency (P.E.), luminous efficiency (cd/A), and CIE coordinates. To conclude, a highly efficient white phosphorescent excimer-based OLEDs made with two light-emitting platinum complexes and having a simple structure showed improved EL characteristics and color properties. The EQE of these devices at $500\;cd/m^2$ is 14.5% with a corresponding power efficiency of 17 lm/W, CIE coordinates of (0.382, 0.401), and CRI of 81.

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Fabrication and Characterization of High Efficiency CBP:Ir(ppy)_3$-PhOLEDs (고효율 $CBP:Ir(ppy)_3$-PhOLEDs의 제작과 특성 연구)

  • Jang, Ji-Geun;Shin, Sang-Baie;Shin, Hyun-Kwan;Ahn, Jong-Myoung;Chang, Ho-Jung;Ryu, Sang-Ouk
    • Journal of the Microelectronics and Packaging Society
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    • v.15 no.2
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    • pp.1-6
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    • 2008
  • New devices with the structure of ITO/2-TNATA/NPB/TCTA/CBP:$7%Ir(ppy)_3$/BCP/SFC-137/LiF/Al were designed and fabricated to develop high efficiency green phosphorescent organic light emitting diodes and their electroluminescence properties were evaluated. Among the devices with different thicknesses of CBP in a range of $150{\AA}{\sim}350{\AA}$, the best luminance was obtained in the device with $300{\AA}$-thick CBP host. Nearly saturated current efficiencies indicates that the maximum efficiency value can be obtained with CBP thicknesses of $300{\AA}{\sim}350{\AA}$. The current density, luminance, and current efficiency of the PhOLED(phosphorescent organic light emitting diode) with $CBP(300{\AA}):7%Ir(ppy)_3-emissive$ layer at an applied voltage of 10V were $40mA/cm^2,\;10000cd/m^2$, and 25 cd/A, respectively. The maximum current efficiency was 40.5cd/A under the luminance of $160cd/m^2$. The peak wavelength and FWHM(full width at half maximum) in the electroluminescence spectral were 512nm and 60nm, respectively. The color coordinate was (0.28, 0.63) on the CIE (Commission Internationale de I'Eclairage) chart.

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Treatments of Electron Transport Layer in the Fabrication of High Luminous Green Phosphoresent OLED (고휘도 녹색 인광 OLED 제작에서 전자수송층 처리)

  • Jang, Ji-Geun;Kim, Won-Ki;Shin, Sang-Baie;Shin, Hyun-Kwan
    • Journal of the Semiconductor & Display Technology
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    • v.7 no.3
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    • pp.5-9
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    • 2008
  • New devices with structure of ITO/2TNATA/NPB/TCTA/CBP:7%Ir(ppy)$_3$/BCP/ETL/LiF/Al were proposed to develop high luminous green phosphorescent organic light emitting diodes and their electroluminescent properties were evaluated. The experimental devices were divided into two kinds according to the material ($Alq_3$ or SFC137) used as an electron transport layer (ETL). Luminous intensities of the devices using $Alq_3$ and SFC137 as electron transport layers were 27,500 cd/$m^2$ and 51,500 cd/$m^2$ at an applied voltage of 9V, respectively. The current efficiencies of both devices were similar as 12.6 cd/A under a luminance of 10,000 cd/$m^2$, while showed slower decay in the device with SFC137 as an ETL according to the further increase of luminance. Current density and luminance of the device with SFC137 as an electron transport layer were higher at the same voltage than those of the device with $Alq_3$ as an ETL.

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다양한 호스트에서 청색 인광 도펀트 FIrpic이 적용된 청색인광 OLED 소자의 전기 및 광학적 특성

  • Im, Seung-Hyeok;Lee, Chan-Jae;Gwak, Min-Gi
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.08a
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    • pp.117-117
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    • 2010
  • 최근 10여년간 OLED는 급속한 기술발전으로 효율의 급속히 향상되어 100 lm 이상의 소자가 발표되고 있어, 디스플레이와 조명용 광원으로서의 응용 가능성이 증가하고 있다. 또한 에너지 및 환경의 중요성이 대두되며 효율은 점차 중요해 지고 있다. OLED의 효율 향상을 위해, 내부 양자효율이 25%인 형광 OLED를 대체할 수 있는, 인광 OLED가 대두되고 있다. 인광 OLED는 내부양자 효율이 형광 OLED에 비해 4배. 즉 100%의 내부양자 효율을 갖는다. 그러나 주로 사용되는 청색인광 물질인 FIrpic, Fir6 등의 수명이 짧다는 점과 색 좌표의 y값이 0.20 이상으로 하늘색 계열의 색특성을 보이는 등 여러 단점이 있다. 현제 이러한 단점을 보완하고자 하는 여러 연구가 진행되고 있다. 이에 본 연구에서는 다양한 호스트 물질을 사용, 도펀트 물질인 FIrpic을 도핑하여 청색인광의 효율을 높이고 수명을 증진시키고자 한다. 양극전극으로 RF 플라즈마 처리한 ITO를 사용하였으며, 진공증착방법을 사용하여 정공 주입층(HIL)으로 2-TNATA와 정공 수송층(HTL)으로 a-NPD을 증착하였으며, 전자 수송층(ETL)으로 Balq, 전자주입층(EIL)으로 LiF와 음극전극으로 Al을 증착하였다. 발광층(EML)에 사용되는 호스트 물질은 mCP, TCTA, CBP 등으로 다양화 하여 도펀트 물질인 FIrpic을 각각의 호스트 물질에 8 wt%으로 도핑하여 OLED 소자를 제작하였고, 전기 및 광학적 특성을 평가하였다.

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