期刊文献+

物理共混制备有机白光电致发光器件 被引量:2

Fabrication of white organic light-emitting devices by physical blending
在线阅读 下载PDF
导出
摘要 将有机荧光材料NPB,Alq3,DPVBi和Rubrene分别按照一定比例进行物理共混,作为物理混合层,制备了结构为ITO/物理混合层(120 nm)/LiF/Al的有机电致发光器件,研究了物理混合层中不同Rubrene比例对器件性能的影响.结果表明:随着Rubrene共混比例增加,器件色度发生相应改变,并呈现DPVBi和Rubrene发光为主,伴随部分Alq3发光的特点,来自阳极部分空穴被Ru-brene俘获,与阴极电子复合而辐射发光,其他在NPB中传输.阴极电子与阳极空穴在Alq3上形成激子,激子转移到Rubrene中而减弱了Alq3发光强度.器件的亮度和电流效率也随电压呈现规律性的变化. Blended the organic fluorescent materials of NPB,Alq3,DPVBi and Rubrene in a certain proportion,new white organic light-emitting devices(OLEDs) was fabricated with the structure of ITO/physical mixed layer(120 nm)/LiF/Al.The effect of Rubrene proportion on the performance of OLEDs was investigated.With the increase of Rubrene proportion,the device has a corresponding color change.The luminescence of the devices is mainly from DPVBi and Rubrene with subordinately from Alq3.The partial holes from anode are captured by Rubrene and combined with electron to show radioluminescence,and other holes are transferred in NPB.The excitons are formed from the combine of electrons and holes,and transfer from Alq3 to Rubrene,leading in the decrease of radioluminescence of Alq3.The brightness and current efficiency of the devices show regular change with voltage.
出处 《江苏大学学报(自然科学版)》 EI CAS 北大核心 2011年第4期464-467,共4页 Journal of Jiangsu University:Natural Science Edition
基金 国家自然科学基金资助项目(60978059) 江苏省研究生创新计划项目(CX09B_193Z)
关键词 有机发光器件 物理共混技术 荧光材料 电致发光 亮度 电流效率 organic light-emitting devices physical blending technique fluorescence materials electroluminescence brightness current efficiency
  • 相关文献

参考文献5

  • 1Kido J, Hongawa K, Okuyama K, et al. White light- emitting organic electroluminescent devices using the po- ly-(N-vinylcarbazole) emitter layer doped with three fluorescent dyes [J]. Appl Phys Lett, 1994, 64 (7) : 815 -817.
  • 2Xie W, Wu Z, Liu S, et al. Non-doped-type white or- ganic light-emitting devices based on yellow-emitting ul- trathin 5,6, 11, 12-tetraphenylnaphthacene and blue- emitting 4,4'-bis ( 2,2'-diphenyl vinyl ) -1,1 '-biphenyl [J]. J Phys D: Appl Phys, 2003, 36(19): 2331 - 2334.
  • 3Forget Sebastien, Chenais Sebastien, Tondelier Denis, et al. Red-emitting fluorescent organic light emitting diodes with low sensitivity to self-quenching[J]. J Appl Phys, 2010, doi:10. 1063/1. 3481460.
  • 4Cho Hyunsu, Yun Changhun, Yoo Seunghyup. Multilayer transparent electrode for organic light-emitting diodes: tuning its optical characteristics[J]. Optics Ex press, 2010, 18(4): 3404-3414.
  • 5李艳武,刘彭义,侯林涛,吴冰.阴极蒸镀和隔离层对有机发光二极管性能的影响[J].光电子.激光,2010,21(5):672-674. 被引量:7

二级参考文献12

  • 1土克旭,吴有余,李海蓉,张福甲.以9,9′-联蒽和红荧烯为发光层的白色OLED研制[J].光电子.激光,2009,20(3):290-293. 被引量:2
  • 2马军伟,张良,曹进,蒋雪茵,张志林.具有高效空穴注入的高电子传输层的白光电致发光器件[J].光电子.激光,2009,20(3):308-312. 被引量:6
  • 3Ghosh A P, Gerenser L J, Jarman C M, et al. Thin-film encapsulation of organic light-emitting devices[J]. Appl Phys Lett, 2005,86(22) :223503.
  • 4Wong F L,Fung M K,Tao S L,et al. Long-lifetime thin-film encapsulated organic light-emitting diodes [J].J Appl Phys, 2008,104 ( 1 ) : 014509.
  • 5Sun H Y,Lau K M,Lau K C,et al. Fluorocarbon film as cathode protective coating in organic light-emitting devices[J]. Appl Phys Lett,2006,88(22):223503.
  • 6Fung M K,Gao Z Q, Lee C S,et al. Inhibition of dark spots growth in organic electroluminescent devices[J]. Chem Phys Lett,2001,333(6) :432-436.
  • 7Tang J X,Zhou Y C,Liu Z T,et at. Interfacial electronic structures in an organic double-heterostructure[J].Appl Phys Lett, 2008,93(4):043512.
  • 8Helander M G, Wang Z B, Lu Z H. Contact formation at the C60/alkali-metal fluoride/AI interface[J]. Appl Phys Lett, 2008,93(8) :083311.
  • 9Feng X D,Huang C J,Lui V,et al. Ohmic cathode for low-voltage organic light-emitting diodes[J].Appl Phys Lett, 2005,86 (14) :143511.
  • 10Unold T, Meyer C, Bauer G H. Conductivity transients in C60 fullerene thin films [J].Synthetic Metals, 2001, 121: 1179- 1180.

共引文献6

同被引文献26

  • 1D'Andrade B W, Holmes R J, Forrest S R. Efficient or- ganic electrophosphorescent white-light-emitting device with a triple doped emissive layer [ J ]. Adv Mater, 2004, 16(7) :624 -628.
  • 2Service Robert F. Organic LEDs look forward to a bright, white future [J]. Science, 2005, 310(5755): 1762 - 1763.
  • 3Zhong Ze, Dai Yanfeng, Ma Dongge,et al. Facile synthesis of organo-soluble surface-grafted all-single-layer graphene oxide as hole-injecting buffer material in orga- nic light-emitting diodes [ J ]. Journal of Materials Che- mistry,2011,21 (16) :6040 - 60d5.
  • 4Zhang Zilong, Zou Luyi, Ren Aimin, et al. Theoretical investigations on eleetronie structures and photophysical properties of novel bridged triphenylamine derivatives [J]. Quantum Chemistry,2012, 112 ( 5 ) : 1473 - 1490.
  • 5Justin Thomas K R, Kapoor N, Prasad Bolisetty M N K, et al. Pyrene-fluorene hybrids containing acetylene lin- kage as color-tunable emitting materials for organic light- emitting diodes [ J ]. J Org Chem, 2012, 77 ( 8 ) : 3921 - 3932.
  • 6Hou Jianhua, Wu Jiang, Xie Zhiyuan, et al. Efficient inverted top-emitting organic light-emitting diodes using ultrathin MOO3/C60 bilayer structure to enhance hole injection[J]. appl Phys Lett,2009,95 (20) :203508.
  • 7Wu Xiaoming, Bi Wentao, Hua Yulin, et al. C60/N, N'-bis ( 1 -naphthyl ) -N, N'-diphenyl - 1 , 1'-biphenyl-4,4'- diamine:MoO3 as the intereonneetion layer for high effi- cient tandem blue fluorescent organic light-emitting diodes [ J }. Appl Phys Lett,2013,102 ( 24 ) :243302.
  • 8Novoselov K S,Geim A K, Morozov S V,et al. Electric field effect in atomically thin carbon films [ J ]. Science, 2004,306 : 666 - 669.
  • 9Kim K S, Zhao Y, Jang H, et al. Large-scale pattern growth of graphene films for stretchable transparent elec- trodes [J]. Nature ,2009,457:706 - 710.
  • 10Stoller M D, Park S J, Zhu Y W, et al. Graphene- based ultracapaeitors [ J ]. Nano Lett, 2008,8 ( 10 ) : 3498 - 3502.

引证文献2

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部