• Title/Summary/Keyword: BCP (bathocuproine)

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Performance Enhancement of Organic Light-emitting Diodes with an Electron-transport Layer of Bathocuproine

  • Honga, Jin-Woong;Guo, Yi-Wei;Shin, Jong-Yeol;Kim, Tae Wan
    • Transactions on Electrical and Electronic Materials
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    • v.17 no.1
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    • pp.37-40
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    • 2016
  • Performance enhancement of organic light-emitting diodes (OLEDs) is investigated in a device structure of ITO/TPD/Alq3/LiF/Al and ITO/TPD/Alq3/BCP/LiF/Al. Here, bathocuproine (BCP) is used as an electron-transport layer. Current density-voltage-luminance characteristics of the OLEDs show that the performance of the device is better with BCP layer than without BCP layer. The current density, luminance, luminous efficiency, and external-quantum efficiency are improved by approximately 22%, 50%, 2%, and 18%, respectively. Since the BCP layer lowers the electron energy barrier, electron transport is facilitated and the movement of hole is blocked as the applied voltage increases. This results in an increased recombination rate of holes and electrons.

Interfacial Electronic Structure of Bathocuproine and Al: Theoretical Study and Photoemission Spectroscopy

  • Lee, Jeihyun;Kim, Hyein;Shin, Dongguen;Lee, Younjoo;Park, Soohyung;Yoo, Jisu;Jeong, Junkyeong;Hyun, Gyeongho;Jeong, Kwangho;Yi, Yeonjin
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.169-169
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    • 2014
  • Interfacial electronic structure of bathocuproine and Al was investigated using in-situ photoemission spectroscopy and density functional theory (DFT) calculations. Bathocuproine is used for exciton blocking and electron transport material in organic photovoltaics and Al is typical cathode material. When thin thickness of Al was thermally evaporated on BCP, gap states were observed by ultraviolet photoemission spectroscopy. The closest gap state yielded below 0.3 eV from Fermi level. By x-ray photoemission spectroscopy, interaction of Al with nitrogen of BCP was observed. To understand the origin of gap states, DFT calculation was carried out and gap states was verified with successive calculation of interaction of Al and nitrogen of BCP. Furthermore, emergency of another state above Fermi level was observed. Remarkable reduction of electron injection barrier between Al and BCP, therefore, is possible.

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The Fabrication of OLED using PBD as a Hole Blocking Layer

  • Kang, Min-Woong;Kim, Jong-Sung;Kwon, Sang-Jik;Lee, Hoo-Kyun
    • 한국정보디스플레이학회:학술대회논문집
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    • 2002.08a
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    • pp.784-787
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    • 2002
  • Oganic light emitting diodes (OLEDs) using PBD(2-(4-biphenylyl)-5-(4-tert-butylpheny)-1,3,4oxadiazole) as a hole blocking layer were fabricated and their device performances were investigated. The devices have a structure of glass substrate ${\setminus}$ indium tin oxide (ITO) ${\setminus}$ TPD(HTL)${\setminus}$PBD,BCP(HBL)${\setminus}$Alq3(EIL)${\setminus}$Mg:Ag(cathode). In this work Bathocuproine(BCP:2,9-Dimethyl-4,7-diphenyl-1,10-phenanthroline) and PBD which were previously known as a good ETL material were used as a HBL. By employing HBL, the luminance and quantum efficiency of OLEDs could be improved due to the increase of recombination probability of electrons and holes.

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Feasibility Test for Radical reactions in Organic Light Emitting Diode (유기 발광 다이오드 내부의 라디칼 반응 가능성 검사)

  • Han, Chul-Hee
    • Journal of Institute of Control, Robotics and Systems
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    • v.14 no.4
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    • pp.365-368
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    • 2008
  • Feasibility test for radical reactions in organic light emitting diode(OLED) has been applied on OLED consisting of hole transport layer(HTL) and electron transport layer(ETL). Organic molecules such as 4,4',-Bis[N-(1-naphthyl)-N-phenylamino] biphenyl(NPD) and 4,4',4"-tris(3-methylphenylphenylamino)triphenylamine(m-MTDATA) are chosen for hole transport layer(HTL) and Bathocuproine(BCP) for electron transport layer(ETL) in this study. Informations on energy and shape of frontier orbitals and data on radical reactions of simple aromatics from semiconductor($TiO_2$) photocatalysis have provided basis for determining feasibility for radical reactions in OLED. The outcome of our feasibility test would be useful in designing optimum molecule for organic layer with a view to extending the lifetime of OLED.