• Title/Summary/Keyword: Hole transporting layer

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Improved Performance of Organic Light-Emitting Diodes Using Novel Hole-transporting Materials

  • Kim, Young-Kook;Hwang, Seok-Hwan;Kwak, Yoon-Hyun;Lee, Chang-Ho;Yi, Jeoung-In;Lee, Jong-Hyuk;Kim, Sung-Chul
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.758-761
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    • 2009
  • The electroluminescent devices with the phenylnaphthyldiamine HTMs as the hole-transporting layer were more efficient than that with the biphenyldiamine HTM 1. Particularly, the life-time of the device IV using HTM 2 is about two times longer than that of the reference device III with HTM 1 within the measured current density, indicating more effective recombination at the emitting layer of device IV.

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Electrical Properties of the Molybdenum oxide doped Hole transport layer

  • Yun, Jin-Young;Lee, Chang-Hee;Song, Won-Jun;Sung, Yeun-Joo
    • 한국정보디스플레이학회:학술대회논문집
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    • 2007.08a
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    • pp.691-693
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    • 2007
  • We report on a highly conductive and stable hole transporting layer comprising of N,N'-di(1- naphthyl)-N,N'-diphenylbenzidine $({\alpha}\;-NPD)$ doped with molybdenum oxide $(MoO_3)$. Compared to the reference device, the device with $MoO_3-doped$ hole transporting material exhibits higher conductivity and thermal stability. The temperature dependence of the current-voltage characteristics are studied for various $(MoO_3)$ doping concentration.

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Studies on The Optical and Electrical Properties if Europium Complexes with Monolayer and Multilayer (Europium complexes 단층과 다층 구조 박막의 전기적ㆍ광학적 특성에 관한 연구)

  • 이명호;표상우;이한성;김영관;김정수
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.11 no.10
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    • pp.871-877
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    • 1998
  • Electroluminescent(EL) devices based on organic materials have been of great interest due to their possible applications for large-area flat-panel displays, where they are attractive because of their capability of multicolor emission, and low operation voltage. In this study, glass substrate/ITO/Eu(TTA)$_3$(phen)/Al, glass substrate/ITO/Eu(TTA)$_3$(phen)/Al and glass substrate/ITO/Eu(TTA)$_3$(phen)/AlQ$_3$/Al structures were fabricated by vacuum evaporation method, where aromatic diamine(TPD) was used as a hole transporting material, Eu(TTA)$_3$(phen) as an emitting material, and Tris(8-hydroxyquinoline) aluminu-m(AlQ$_3$) as an electron transporting layer. Electrolumescent(EL) and I-V characteristics of Eu(TTA)$_3$-(-phen) were investigated. These structures show the red EL spectra, which are almost the same at the PL spectrum of Eu(TTA)$_3$(phen). I-V characteristics of this structure show that turn-on voltage was 9V and current density was 0.01A/㎤ at a operation voltage of 9V. Electrical transporting phenomena of these structures were explained using the trapped-charge-limited current model with I-V characteristics.

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Studies on the Characteristics of Single-Layered Organic EL Device Using a Copolymer Having Hole and Electron Transporting Moieties (정공 및 전자 전달체의 기능기를 가진 공중합체를 사용한 단층형 유기 발광소자의 특성에 관한 연구)

  • 이창호;김승욱;오세용
    • Polymer(Korea)
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    • v.26 no.4
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    • pp.543-550
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    • 2002
  • We have synthesized a novel carrier transporting copolymer having triphenylamine moiety as a hole transporting unit and triazine moiety as an electron transporting unit in the polymer side chain. Single-layered organic electroluminescent (EL) devices consisted of ITO/copolymer and emitting materials (DCM, coumarin 6, DPvBi)/Al exhibited maximum external quantum efficiency when the ratio of hole transporting unit and electron transporting unit is 6:4 and the content of emitting material is 30 wt%. Especially, the devices emitted the light of red (620 nm), green (520 nm) and blue (450 nm) corresponding to the emitting materials, respectively. A maximum luminance of ITO/copolymer (6:4) and DCM (30 wt%)/Al EL device was about 500 cd/$m^2$ at a DC drive voltage of 12V.

Improved Efficiency of Polymer LEDs using Electron Transporting Layer

  • Kim, Jong-Lae;Kim, Jai-Kyeong;Cho, Hyun-Nam;Kim, Dong-Young;Hong, Sung-Il;Kim, Chung-Yup
    • 한국정보디스플레이학회:학술대회논문집
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    • 2000.01a
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    • pp.125-126
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    • 2000
  • We report the use of fluorene based copolymers containing quinoline(POF66, PIF66) and pyridine(PFPV) units as electron transporting polymers for multi-layered LEDs. Double-layer device structure combining PIF66 as electron-transporting layer with the emissive MEHPPV showed a maximum quantum efficiency of 0.03%, which is 30 fold increased compared with ITO/MEHPPV/Al single-layer device. PFPV layer increased the quantum efficiency up to 0.1% in the device structure of ITO/(P-3:PVK)/PFPV/Al. The ETL with the electron deficient moiety improved the LED performance by the characteristics of electron transporting as well as hole blocking between emissive layer and metal cathode.

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Characteristics of Organic Light-Emitting Diodes with the Variation of Hole-Transporting Layer (정공 수송층 변화에 따른 유기 발광 소자 특성)

  • Jeong, J.;Kim, G.S.;Byun, D.G.;Kim, G.Y.;Kim, T.W.;Hong, J.W.
    • Proceedings of the KIEE Conference
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    • 2003.10a
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    • pp.134-136
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    • 2003
  • In this work, we have seen the effect of hole-transporting layer in organic light-emitting diodes using N,N'-biphenyl-N,N'-bis-(3-methylphenyl)-[1,1'-biphenyl]-4,4'-diamine(TPD) and N,N'-biphenyl-N,N'-bis-(1-naphenyl)-[l,l'-biphenyl]-4,4'-diamine(NPB). NPB is regarded as a better hole trans porting material than TPD, since it has a higher glass transition temperature($T_g$). And current-voltage, luminance-voltage and external quantum efficiency of device were measured with the thickness variation of buffer layer using copper phathalocyanine(CuPc) am polytetrafluoroethylene (PTEE) at room temperature. We have obtained an improvement of External quantum efficiency when the CuPc 30[nm] and PTFE 1.0[nm] is used.

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Studies on the Energy Transfer in LED Containing the Layer made of the Blends of Hole Transporting Polymer and Organic Phosphorescent Dye (정공전달고분자와 유기형광염료의 혼합물 박막이 이용된 발광소자의 에너지 전달특성 연구)

  • Kim, Eugene;Jung, Sook
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.17 no.11
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    • pp.1192-1198
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    • 2004
  • Hole transporting polymer(poly[N-(p-diphenylamine)phenylmethacrylamide], PDPMA) was doped with nile red dye at various concentrations to study the influence of doping on the energy transfer during light emitting processes. Organic LEDs composed of ITO/blend(PDPMA -nile red)/ Alq$_3$/Al as well as thin films of blend(PDPMA -nile red)/ Alq$_3$ were manufactured for investigating photoluminescence, electroluminescence, and current-voltage characteristics. Atomic Force Microscopy was also used to observe surface morphology of the blend films. It was found that such doping. significantly influences the efficiency of the energy transfer from the Alq$_3$ layer to blended layer and the optical/electrical properties could be optimized by choosing the right concentration of the dye molecule. The results also showed a interesting correlation with the morphological aspect, i.e. the optimum luminescence at the concentration with the least surface roughness. When the concentration of nile red was 0.8 wt%, the maximum energy transfer could be achieved.

Depositon of NiO films for Inorganic Hole-transporting Layer in QD-LED (QD-LED용 무기계 홀전도층 NiO 박막 증착 연구)

  • Chung, Kook-Chae;Oh, Seung-Kun;Kim, Young-Kuk;Choi, Chul-Jin
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.06a
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    • pp.330-330
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    • 2009
  • For the high-performance Quantum dots-Light Emitting Diodes in the near-infrared and visible spectrum, adequate electro- and hole-transporting layers are required. The operation lifetimes of typical materials used in OLEDs are very limited and degraded especially by the oxygen and humid atmosphere. In this work, NiO was selected as a possible hole-transporting layer replacing the TPD film used in QD-LEDs. About 40-nm-thick NiO films have been deposited by the rf-sputtering method on various technical substrates such as FTO/glass, ITO/glass, and ITO/PEN. For the balance of charge carriers and quenching consideration, the resistivity of the deposited NiO films was investigated controlling the oxygen in the sputtering gas. NiO films were fabricated at room temperature and about 6mTorr using pure Ar, 2.5%-, 5%-, and 10%-mixed $O_2$ in Ar respectively. We also investigated the rf-power dependence on NiO films in the range of 80 ~ 200 Watts. The resistivity of the samples was varied from highly conductive to resistive state. Also discussed are the surface roughness of NiO films to provide the smooth surface for the deposition of QDs.

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Luminacne Efficiency Improvement of OLED through Optical Interference Effect (광학적 간섭효과에 따른 OLED의 발광효율 개선)

  • Lim, J.S.;Lee, B.J.;Shin, P.K.;Kim, S.J.;Cheong, M.Y.;Lee, E.H.;Kim, D.H.;Jin, K.S.
    • Proceedings of the KIEE Conference
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    • 2008.07a
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    • pp.1275-1276
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    • 2008
  • In this study, a micro-cavity organic light-emittingdevice (OLED) with semi-transparent-Ag/AgO hole injecting layer (HIL) was fabricated and their performance was investigated. For the fabrication of OLEDs N,N-diphenyl-N,N-(3-methyphenyl)-1,1-biphenyl-4-4-diamine (TPD), known as a hole transporting material and tris (8-hydroxyquinolinato)-aluminum ($Alq_3$) as both electron-transporting layer (ETL) and emission layer (EML) were deposited using thermal evaporation technique. And Al layer as cathode was then deposited using thermal evaporation technique. Effects of the semi-transparent-Ag/AgO layers on the resulting OLED performance were investigated.

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NiO Buffer layer 형성을 통한 유기태양전지 안정성 향상 연구

  • An, Won-Min;Jeong, Seong-Hun;Kim, Do-Geun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2015.11a
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    • pp.306-307
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    • 2015
  • 유기태양전지의 대표적 Hole Transporting Layer(HTL)로는 전도성 고분자인 PEDOT:PSS이다. PEDOT:PSS는 약산성의 물질로 전극을 부식시켜 디바이스의 효율을 감소시키기 때문에 PEDOT:PSS를 대체하기 위한 Buffer층에 대한 연구가 활발히 진행되어지고 있다. PEDOT:PSS를 대체할 수 있는 Nickel Oxide(NiO) Buffer 층은 wide band-gab으로 Hole Transporting Layer와 Electron Blocking Layer 역할을 동시에 하여 디바이스의 효율을 향상시킬 수 있으며, 디바이스의 수명을 향상시킬 수 있다는 장점이 있다. NiO는 용액공정과 Sputter 증착 방법으로 형성할 수 있는데, 용액공정은 고온공정이 요구되어지고 Sputter 증착방법은 산화되기 쉬운 전극위에서는 전극의 손상을 발생한다. 본 연구에서는 이러한 단점을 해결하기 위해서 Ni을 Magnetron Sputter로 증착한 후 Ion Beam 처리를 통해 산화시켜 NiO 층을 형성하는 방법을 연구하였다. 본 연구에서 제안한 NiO형성 방법으로 유기태양전지를 제작하여 PEDOT:PSS를 Buffer층으로 사용한 태양전지와 Voc가 0.72 V로 유사하게 나와 NiO가 Buffer층으로 잘 형성된 것을 확인하였다.

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