• Title/Summary/Keyword: DCJTB

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Luminance Characteristics of a Novel Red-Light-Emitting Device Based on Znq2 and Dye

  • Cho, min-Jeong;Park, Wan-Ji;Lee, Jeong-Gu;Lim, In-Su;Lim, Kee-Joe;Kim, Hyun-Hoo
    • Transactions on Electrical and Electronic Materials
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    • v.3 no.2
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    • pp.16-19
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    • 2002
  • In this study, a novel red emitting organic electroluminescent (EL) device was fabricated with the bis(8-oxyquinolino)zinc II (Znq2) doped dye as an emitting layer. The Znq2 was synthesized successfully from zinc chloride (ZnC1$_2$) as an initial material. Then, we fabricated the red organic EL device with a dye (DCJTB) doped and inserted Znq2 between emission layer and cathode for increasing EL efficiency. The hole transporting layer is a N,N'-diphenyl-N,N'-bis-(3-methylphenyl)-1,1'-diphenyl-4,4-diamine (TPD), and the host material of emission layer is Znq2. And the electrical and luminance characteristics of the device were measured. We found that the EL device with Znq2 inserting layer results in the increasing luminance efficiency.

적록청의 기본색을 이용한 백색 Organic Light-Emitting Devices(OLEDs)의 발광 특성

  • Kim, Dong-Il;Han, Jeong-Hwan
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2004.07a
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    • pp.192-195
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    • 2004
  • 적록청(Red, Green, Blue : RGB)의 세 기본 염료(primary dyes)를 사용하여 백색 유기전계발광소자(White Organic Light Emitting Devices : WOLEDs)을 유기물 분자선 증착(Organic Molecular Beam Deposition)방법에 의해서 제작하였다. 소자의 구조는 $ITO/{\alpha}-NPD(40nm)/DPVBi(6nm)/Alq_3(12nm)/Alq_3:DCJTB(7nm,3%)\;or\;DPVBi:DCJTB(7nm,3%)/Alq_3(35nm)/MgAg(150nm)$으로, red 발광층의 host 물질을 $Alq_3$ 또는 DPVBi의 두 종류를 사용하여 소자를 제작하였다. 이들 소자들은 전류밀도가 증가함에 따라 스펙트럼 곡선의 변화가 거의 보이지 않았으며, 색좌표는 전류밀도 $20mA/cm^2$에서 (0.34,0.34)이고 $100mA/cm^2$에서(0.32,0.33)으로 비교적 안정적이였다. $Alq_3$을 red 발광층의 host로 사용한 소자는 $10mA/cm^2({\sim}6V)$에서 luminance yield가 1.87cd/A 또는 $100cd/m^2({\sim}5.5V)$에서는 발광효율 1.21m/w으로, DPVBi을 red 발광층의 host로 사용한 소자보다 약 20%의 효율향상을 보였다. 그러나 전류밀도 $30mA/cm^2$ 이상에서는 발광효율이 반전되어 나타났다. 이런 현상은 DPVBi을 red 발광층의 host로 사용한 소자가 $Alq_3$을 red 발광층의 host로 사용한 소자보다 발광 소광 현상이 적게 일어난 것에 기인하였다고 생각된다. 두 소자 모두 $40mA/cm^2$ 에서 이상적인 화이트 발란스와 같은(0.33,0.33)의 색좌표를 보였다.

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The Luminance characteristics of Red OELD based on Znq$_2$ and dye (Znq2와 dye에 의한 적색 OELD의 발광특성)

  • 조민정;최완지;박철현;임기조;박수길;김현후
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2001.07a
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    • pp.358-360
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    • 2001
  • In this study, the bis(8-oxyquinolino)zinc II (Znq$_2$) were synthesized successfully from zinc chloride (ZnC1$_2$) as a initial material. Then, we fabricated red organic electroluminescent device with a dye (DCJTB)-doped and inserted Znq$_2$ between emission layer and cathode layer for increasing EL efficiency. The hole transfer layer is a N,N'-diphenyl-N,N'-bis-(3-methyl phenyl) -1,1'-diphenyl-4,4'- diamine(TPD), and the host material of emission layer is Znq$_2$. And we study the electrical and optical properties of devices. We found that the device using Znq$_2$ inserting layer result in the increased efficiency.

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Fabrication of WOLED with orange and blue emissive layers using two complementary color method

  • Choi, Jae-Yoon;Yoon, Hyun-Soo;Lee, Soo-Hwan;Kim, You-Hyun;Chae, Soo-Joh;Kim, Woo-Young
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.537-539
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    • 2008
  • WOLED devices were fabricated using two complementary color method with two emissive layers of blue and orange color respectively. WOLED's color purity was optimized as changing thickness of blue emissive DPVBi layer with most efficient red emissive layer doped with 0.2% DCJTB in $Alq_3$ and obtained better white color coordinates of (0.36, 0.33) at 9V.

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A Study on the Fabrication and Characteristic Analysis of Organic Light Emitting Device using BAlq (BAlq를 적용한 유기발광소자의 제작 및 특성 분석에 관한 연구)

  • 오환술;황수웅;강성종
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.17 no.1
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    • pp.83-88
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    • 2004
  • BAlq was fabricated as for hole blocking layer in the OLED devices to investigate its electrical and optical characteristics. Device structure was ITO/$\alpha$ -NPD/EML/BAlq/Alq3/Al:Li using TYG-201, DPVBi (4, 4 - Bis (2, 2 - diphenylethen-1 - yls) - Biphenyl), Alq and DCJTB (4-(dicyanomethylene)-2- (1-propyls)6-methy 4H-pyrans) as green emitting material, blue emitting material, host material for red emission and red emitting guest material respectively. The OLED device showed optimum working voltage and electron density at 600 cd/$m^2$ when thickness of BAlq is 25$\AA$ for RGB OLED devices while their efficiencies are better at 50$\AA$ of BAlq. Red and blue color OLEDs also fabricated using 30$\AA$ thickness of BAlq and compared with those without BAlq layer. BAlq was more effective in electrical properties such as working voltage, current density and efficiency of red OLED than blue and green ones. This study describes that 30$\AA$ is optimum thickness of BAlq for best performance of full color OLED devices when using BAlq as a hole blocking material.

Emission Properties of Red OELD with $Znq_2$ and dye (Znq2와 dye에 의한 적색 유기 전계 발광 소자의 발광특성)

  • Cho, M.J.;Choi, W.J.;Park, C.H.;Lim, K.J.;Park, S.K.;Kim, H.H.
    • Proceedings of the KIEE Conference
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    • 2001.07c
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    • pp.1466-1468
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    • 2001
  • For the full color organic electro-luminescent device, essentially, red, green, and blue emissions are required. But red emission is not to reach minimum level of practical use 31[lm/W]. In order to optimize color purity and power consumption requirements, it is important for the materials development efforts to search for improvements in red emission effisiency. In this study, the bis(8-oxyquinolino)zinc II ($Znq_2$) were synthesized successfully from zinc chloride($ZnCl_2$) as a initial material. Then, we fabricated red organic electroluminescent device with a dye(DCJTB)-doped and inserted $Znq_2$ between emission layer and cathode layer for increasing EL efficiency. The hole transfer layer is a N,N'-diphenyl-N,N'-bis-(3-methyl phenyl) -1,1'-diphenyl-4.4'-diamine(TPD), and the host material of emission layer is $Znq_2$. For the inserting of $Znq_2$, efficiency increased.

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