• Title/Summary/Keyword: aluminum indium oxide

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Frequency Dependent Properties of Tris(8-Hydroxyquinoline) Aluminum Thin Films

  • Lee, Yong-Soo;Park, Jae-Hoon;Choi, Jong-Sun
    • KIEE International Transactions on Electrophysics and Applications
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    • v.11C no.3
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    • pp.70-74
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    • 2001
  • Admittance or impedance spectroscopy is one of the powerful tools to study dielectric relaxation and loss processes in organic and inorganic materials. In this study, the frequency dependent properties of an indium tin oxide/tris(8-hydroxyquinoline) aluminum($Alq_3$)/aluminum structure have been studied. The conductance of the $Alq_3$ film increases with the DC applied voltage up to 4V and decreases above 4V in the low frequency region. This indicates that the resistance of the device decreases with the applied bias due to the carrier injection enhancement, thereafter the injected carriers form the space charge and the additional injection of carriers is prevented. The Cole-Cole plot of the admittance takes a one-semicircle shape, which means that the device can be modeled as a parallel resistor-capacitor network. The resistance and capacitance were estimated as 8.62k${\Omega}$ and 2.7nF, respectively, at 3V in the low frequency region. The dielectric constant ( ${\epsilon}'$ ) of the $Alq_3$ film is independent of the frequency in the low frequency region below 100kHz, while the frequency dependency was observed at above 100kHz. The dielectric loss factor ( ${\epsilon}"$ ) of the $Alq_3$ film shows the dielectric dispersion below 100kHz and dielectric absorption in higher frequency domain. The dispersion is thought to be related to the hopping process of the carriers. The ${\epsilon}"$ is proportional to the reciprocal of the frequency. The dielectric relaxation time was extracted to about 0.318${\mu}s$ from the dielectric absorption spectrum.

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그래핀 투명전극의 벤딩에 대한 복원력 연구

  • Park, Jun-Gyun;Kim, Yeong-Hun;Jeong, Yeong-Jong;No, Yong-Han
    • Proceedings of the Korean Vacuum Society Conference
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    • 2015.08a
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    • pp.162.2-162.2
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    • 2015
  • 플렉서블 디스플레이에 사용되는 투명전극은 벤딩에 의한 인장(tensile) 및 압축(compressive) 스트레스 하에서도 전극의 특성이 지속적으로 유지되어야 한다. 기존 OLED소자의 투명전극으로 사용되던 인듐산화물(ITO, Indium Tin Oxide)는 인듐(Indium)의 희소성 문제뿐만 아니라 벤딩에 대한 복원력이 나쁜 것으로 알려져 플렉서블 디스플레이에는 적합하지 않은 것으로 알려져 있다. 벤딩에 강하고 복원력이 우수한 투명전극 재료가 필요하게 되었다. 본 연구에서는 PEN (Polyethylene Naphthalate) 유연기판 상에 그래핀(Graphene)전극을 구현하여 벤딩에 대한 저항특성을 관찰하였고 일반적으로 많이 사용하는 Aluminum 전극과의 비교를 통해 광효율을 지속적으로 유지할 수 있는 플렉서블 OLED용 전극구현 가능성을 연구하였다. 일반적으로 Al금속은 인장 스트레스를 받음에 따라 저항이 증가하고 다시 복원되면 저항이 감소하는 특성을 갖고 있는데 인장 스트레스에 따라 저항과 늘어난 길이와의 관계는 다음과 같다. $R/R0=(L/L0)^2$ ----------------------------------------- (1) 그러나 반복된 스트레스가 가해질 경우 Al 금속 전극은 복원력을 잃고 저항이 원래대로 돌아가지 않는 문제가 발생하는데 반해 그래핀은 벌집모양의 구조를 갖고 있어 벤딩에 대한 강도가 셀 뿐만 아니라 고탄력으로 인해 복원력이 우수하여 여러 싸이클(cycle)의 벤딩 실험에 의해서도 복원력이 지속적으로 유지되었다. Al 금속 전극의 경우 벤딩 각도 또는 정도에 따라 복원력이 유지되는 구간이 있으나 반복적인 벤딩 싸이클에 의해 복원력이 감소하여 인장 스트레스에 의한 저항 증가 후 스트레스 제거 시 저항 감소가 되지 않는데 24시간 동안 전기 저항 변화를 관찰하면 수시간 후에나 저항이 어느 수준까지만 복원되는 것을 확인할 수 있었으나 복원에 오랜 시간이 소요된다는 점에서 그래핀과 비교가 된다. SEM(Scanning electron microscopy) 분석을 통해 인장 스트레스 인가/제거를 반복함에 따라 Al 금속표면이 표면에 열화되는 것을 확인하였으나 그래핀에서는 나타나지 않았다. 본 연구에서는 높은 투과도와 우수한 전기적 특성을 가지는 그래핀 투명 전도성 전극이 다양한벤딩 조건에서도 뛰어난 복원 특성을 보이는 것을 밝혀내어 차세대 투명 전극 물질로 개발하고자 하였다.

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Top emission inverted organic light emitting diodes with $N_{2}$ plasma treated Al bottom cathodes

  • Kho, Sam-Il;Shon, Sun-Young;Kwack, Jin-Ho;Jung, Dong-Geun
    • 한국정보디스플레이학회:학술대회논문집
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    • 2003.07a
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    • pp.889-892
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    • 2003
  • Effects of $N_{2}$ plasma treatment of the Al bottom cathode on the characteristics of top emission inverted organic light emitting diodes (TEIOLEDs) were studied. TEIOLEDs were fabricated by depositing an Al bottom cathode, a tris-(8-hydroxyquinoline) aluminum $(Alq_{3})$ emitting layer, an N,N'-diphenyl-N,N'-bis(3-methylphenyl)-1,1'-diphenyl-4,4'diamine (TPD) hole transport layer, and an indium tin oxide (ITO) top anode sequentially. The Al bottom cathode layer was subjected to $N_{2}$ plasma treatment before deposition of the $Alq_{3}$ layer. X-ray photoelectron spectroscopy suggested that the existence of and the amount of $AIN_x$ between the $Alq_{3}$ emitting layer and the Al bottom cathode significantly affect the characteristics of TEIOLEDs. The maximum external quantum efficiency of the TEIOLED with an Ai bottom cathode subjected to $N_{2}$ plasma treatment for 30 s was about twice as high as that of the TEIOLED with an untreated Al bottom cathode.

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The effects of buffer layer using $\alpha$-septithiophene on the organic light emitting diode (유기 전기 발광 소자에서 $\alpha$-septithiophene을 이용한 buffer layer의 영향)

  • Yi, Ki-Wook;Lim, Sung-Taek;Shin, Dong-Myung;Park, Jong-Wook;Park, Ho-Cheol
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2002.04b
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    • pp.53-56
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    • 2002
  • The effect of $\alpha$-septithiophene (${\alpha}-7T$) layers on the organic light emitting diode(OLED) was studied. The ${\alpha}-7T$ was used for a buffer layer in OLED. Hole injection was investigated and improved emission efficiency. The OLEDs structure can be described as indium tin oxide(ITO)/ buffer layer / hole transporting layer / emitting layer / electron transporting layer / LiF / Al. The hole transporting layer were composed of N,N-diphenyl-N,N-di(3-methylphenyl)-1,1-biphenyl-4,4-diamine(TPD), and N,N-di(naphthalene-1-ly)-N,N-diphenyl-benzidine( ${\alpha}$-NPD). The emitting layer, and electron transporting layer consist of tris(8-hydroxyquinolinato) aluminum($Alq_3$). All organic layer were deposited at a background pressure of less than $10^{-6}$ torr using ultra high vacuum (UHV) system. The ${\alpha}-7T$ layer can substitute the hole blocking layer, and improve hole injection properties.

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Optical Effect due to Thickness Variation of Electron Injection Layer in Organic Light-emitting Diodes

  • Lee, Young-Hwan;Lee, Kang-Won;Yi, Keon-Young;Hong, Jin-Woong;Kim, Tae-Wan
    • Transactions on Electrical and Electronic Materials
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    • v.9 no.1
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    • pp.20-23
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    • 2008
  • Organic light-emitting diodes (OLEDs) are attractive because of possible application in display with low-operating voltage, low-power consumption, self-emission and capability of multicolor emission by the selection of emissive materials. To investigated the optical effects, we studied the electrical and optical characteristics due to thickness variation of electron injection materials LiF on organic light-emitting diodes in the ITO (indium-tin-oxide)/N,N'-diphenyl-N, N'-bis(3-methyphenyl)-1,1'-biphenyl-4,4'-diamine(TPD)/tris(8-hydroxyquinoline) aluminum $(Alq_3)/LiF$ layer/Al device. We maintained the thicknesses of TPD and $Alq_3$ layers at 40 nm and 60 nm, respectively. The deposition rates of TPD and $Alq_3$ were in the $1.5{\AA}/s$ under a base pressure of $5{\times}10^{-6}$ Torr. It was found that luminance and luminous efficiency of the device with 0.7 nm LiF layer improve 25 times and 7 times than the device without the LiF layer, respectively.

Electroluminescent Properties of Organic Light-emitting Diodes with Hole-injection Layer of CuPc

  • Lee, Jung-Bok;Lee, Won-Jae;Kim, Tae-Wan
    • Transactions on Electrical and Electronic Materials
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    • v.15 no.1
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    • pp.41-44
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    • 2014
  • Emission properties of the organic light-emitting diodes were investigated with the use of a hole-injection layer of copper(II)-phthalocyanine (CuPc). The manufactured device structure is indium-tin-oxide (ITO) (180 nm)/CuPc (0~50 nm)/N,N'-Bis(3-methylphenyl)-N,N'-diphenylbenzidine (TPD) (40 nm)/tris-(8-hydroxyquinoline) aluminum (III) ($Alq_3$) (60 nm)/Al(100 nm). We investigated the luminescence properties of $Alq_3$ which is affected by the CuPc hole-injection layer. Also, we studied the influence of light-emission properties in the structure of an ITO/CuPc/TPD/$Alq_3$/Al device depending on the several thicknesses of CuPc (0~50 nm) layer. As a result, it was found that the hole injection occurs smoothly in the device with 20 nm thick CuPc layer, and the properties become significantly worse in the device with a CuPc layer thickness higher than 40 nm. We studied the topography and external quantum efficiency depending on the layer thickness of CuPc. Also, we analyzed the electroluminescent characteristics in the low and high-voltage range.

The Effects of Deposition Rate on the Physical Characteristics of OLEDs (유기발광 다이오드의 물성에 미치는 증착속도의 영향)

  • Lee, Young-Hwan;Cha, Ki-Ho;Kim, Weon-Jong;Lee, Jong-Yong;Kim, Gwi-Yeol;Hong, Jin-Woong
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2006.04a
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    • pp.54-55
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    • 2006
  • Organic light-emitting diodes(OLEOs) are attractive because of possible application in display with low operating voltage, low power consumption, self-emission and capability of multicolor emission by the selection of emissive material. We investigated the effects of deposition rate on the electrical characteristics, physical characteristics and optical characteristics of OLEOs in the ITO(indium-tin-oxide)/N.N'-diphenyl-N,N'-bis(3-methyphenyl)-1,1'-biphenyl-4,4'-diamine(TPD)/tris(8-hydroxyquinoline)aluminum($Alq_3$)/Al device. We measured current density, luminous flux and luminance characteristics of devices with varying deposition rates of TPD and $Alq_3$. It has been found that optimal deposition rate of TPD and $Alq_3$ were respectively $1.5{\AA}/s$ from the device structure. An AFM measurement results, surface roughness of the deposited film was the lowest when deposition rate was $1.5{\AA}/s$.

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Organic Light Emitting Diodes (OLED) with Electrostatic spray deposition (ESD)

  • Hwang, Won-Tae;Kim, Nam-Hun;Xin, Guoqing;Jang, Hae-Gyu;Chae, Hee-Yeop
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.432-432
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    • 2010
  • Organic light emitting diodes (OLED) thin films were fabricated by Electrostatic spray deposition (ESD). In this study, we reported the thickness, morphology, current efficiency, luminescence of OLED fabricated by ESD. These results were compared with the spin coating method, and showed that also ESD is a good fabrication method for OLED because of its characteristics similar with the results using spin coating. The active layer consists of organic blends with Poly(N-vinylcarbazole) (PVK), 2-(4-Biphenyl)-5-(4-tert-butylphenyl)-1,3,4-oxadiazole (PBD), N,N'-Bis(3-methylphenyl) -N,N'-bis(phenyl)-benzidine (TPD), Tris(2-phenylpyridine)iridium(III) (Ir(ppy)3), and the structure of OLED consists of aluminum (Al), lithium fluoride (LiF), organic blends, PEDOT:PSS and Indium-tin-oxide (ITO), which was used as the top cathode, cathode interfacial layer, emitting layer and bottom anode, respectively. The results suggest that Electrostatic spray deposition is a promising method for the next generation of OLED fabrication since it has a probability fabricating large-area thin films.

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p형 불순물이 첨가된 정공 수송층을 사용한 녹색 유기발광소자의 전하전송 메카니즘

  • Lee, Gwang-Seop;Chu, Dong-Cheol;Kim, Tae-Hwan
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.424-424
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    • 2010
  • 유기발광소자는 전류구동소자로서 소자를 대형화할 때 소모 전력이 급격히 증가하여 다른 디스플레이 제품에 비해 더욱 더 높은 전력효율을 요구한다. 높은 전력효율과 낮은 구동전압을 갖는 유기발광소자를 제작하기 위해서 P-I-N구조의 유기발광소자에 관한 연구가 활발히 진행되고 있다. 본 연구에서는 일함수가 큰 투명 Indium Tin Oxide (ITO) 양극 위에 p 형 불순물인 2,3,5,6-tetrafluoro-7,7,8,8-tetracyano-quinodimethane (F4-TCNQ) 를 4,4',4"-tris(N-(2naphthyl)-N-phenylamino)triphenylamine (2-TNATA)에 도핑하여 정공주입 및 정공수송을 향상하였으며, 그위에 N,N'-bis(1-naphthyl)-N,N'-diphenyl- 1,1'-biphenyl-4,4'-diamine (NPB) 층을 증착 후, tris-(8-hydroxyquinoline) aluminum ($Alq_3$) 발광층과 전자 수송층으로 사용하여 전자와 정공이 재결합을 하여 엑시톤을 형성하여 녹색 빛을 측정하였다. p 형 불순물은 정공 수송층의 에너지 장벽을 감소하며 발광층으로의 정공주입량을 증가하는 역할을 하여 구동전압을 감소하였으나 발광층내에서 전자와 정공의 비를 불균일하게 하여 발광효율은 약간 감소하였다. p형 불순물인 F4-TCNQ의 도핑의 농도에 따라 측정된 발광특성의 변화로부터 정공의 전송 메카니즘을 분석하였으며 이는 p형 불순물 첨가된 녹색 유기발광소자의 전하수송 메카니즘을 이해하는데 중요한 자료를 제공할 것이다.

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Study on the Characteristics and Fabrication of Organic Light Emitting Devices Using the Synthesised Phosphorescent Metal Complexes (인광특성이 있는 금속 착물의 합성과 그 물질을 이용한 소자 제작 및 소자 특성 평가)

  • Kim, Young-Kwan;Sohn, Byoung-Chung;Kim, Jun-Ho
    • Journal of the Korean Applied Science and Technology
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    • v.19 no.2
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    • pp.97-102
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    • 2002
  • Recently, the phosphorescent organic light-emitting devices (OLEDs) have been extensively studied for their high internal quantum efficiency. In this study, we synthesised several phosphorescent metal complexes, and certified their composition using NMR. We also investigated the characteristics of the phosphorescent OLEDs with the green emitting phosphor, $Ir(ppy)_{3}$. The devices with a structure of indium-tin-oxide(ITO)/N,N'-diphenyl-N,N'-(3-methylphenyI}-1,1'-biphenyl-4,4'-diamine (TPD)/metal complex doped in host materials/2,9-dimethyl-4,7-diphenyl-l,10-phenanthroline(BCP)/tris (8-hydroxyquinolinato) Aluminum($Alq_{3}$)/Li:Al/Al was fabricated, and its electrical and optical characteristics were studied. By changing the doping concentration of tris(2-phenylpyridine)iridium ($Ir(ppy)_{3}$), we fabricated several devices and investigated their characteristics.