• Journal of Infrared and Millimeter Waves
  • Vol. 30, Issue 3, 271 (2011)
CHEN YuLu*, HOU XiaoYuan, and CEN Yan
Author Affiliations
  • [in Chinese]
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    DOI: Cite this Article
    CHEN YuLu, HOU XiaoYuan, CEN Yan. Effect of doping concentration and disorder on the mobility of carriers in organic light emitting diodes[J]. Journal of Infrared and Millimeter Waves, 2011, 30(3): 271 Copy Citation Text show less
    References

    [2] Santato C, Cicoira F, Cosseddu P, et al. Organic lightemitting transistors using concentric source/drain electrodes on a molecular adhesion layer[J]. Appl. Phys. Lett.,2006,88(16):163511—163513.

    [3] Tang C W, Van Slyke S A. Organic electroluminescent diodes[J]. Appl. Phys. Lett.,1987,51(12):913—915.

    [4] Xie Z T, Zhang W H, Ding B F, et al. Interfacial reactions at Al/LiF and LiF/Al[J]. Appl. Phys. Lett.,2009,94(6):063302063304.

    [5] Burroughes J H, Bradley D D C, Brown A R, et al. Lightemitting diodes based on conjugated polymers[J]. Nature,1990,347(6293):539—541.

    [6] Zhou X, Blochwitz J, Pfeiffer M, et al. Enhanced Hole Injection into Amorphous HoleTransport Layers of Organic LightEmitting Diodes Using Controlled pType Doping[J]. Adv. Funct. Mater.,2001,11(4):310—314.

    [7] Pfeiffer M, Forrest S R, Leo K, et al. Electrophosphorescent p i n Organic LightEmitting Devices for VeryHighEfficiency FlatPanel Displays[J]. Adv. Mater.,2002,14(22):1633—1636.

    [8] Harada K, Werner A G, Pfeiffer M, et al. Organic Homojunction Diodes with a High Builtin Potential: Interpretation of the CurrentVoltage Characteristics by a Generalized Einstein Relation[J]. Phys. Rev. Lett.,2005,94(3):036601—036604.

    [9] Ding B F, Zhan Y Q, Sun Z Y, et al. Electroluminescence and magnetoresistance of the organic lightemitting diode with a La0.7Sr0.3MnO3 anode[J]. Appl. Phys. Lett.,2008,93(18):183307—183309.

    [10] Aguirre C M, Auvray S, Pigeon S, et al. Carbon nanotube sheets as electrodes in organic lightemitting diodes[J]. Appl. Phys. Lett.,2006,88(18):183104—183106.

    [11] Hu L B, Gruner G, Li D, et al. Patternable transparent carbon nanotube films for electrochromic devices[J]. J. Appl. Phys.,2007,101(1):016102—016104.

    [12] Li J F, Hu L B, Liu J, et al. Indium tin oxide modified transparent nanotube thin films as effective anodes for flexible organic lightemitting diodes[J]. Appl. Phys. Lett.,2008,93(8):083306—083308.

    [13] Williams C D, Robles R O, Zhang M, et al. Multiwalled carbon nanotube sheets as transparent electrodes in high brightness organic lightemitting diodes[J]. Appl. Phys. Lett.,2008,93(18):183506—183508.

    [14] Logothetidis S. Flexible organic electronic devices: Materials, process and applications[J]. Materials Science and Engineering B,2008,152(13):96—104.

    [15] Paasch G, Scheinert S. Space charge layers in organic fieldeffect transistors with Gaussian or exponential semiconductor density of states[J]. J. Appl. Phys.,2007,101(2):024514—024526.

    [16] Zhou J, Zhou Y C, Zhao J M, et al. Carrier density dependence of mobility in organic solids: A Monte Carlo simulation[J]. Phys. Rev. B,2007,75(15):153201—153204.

    [17] Zhou J, Zhou Y C, Gao X D, et al. Monte Carlo simulation of charge transport in electrically doped organic solids[J]. J. Phys. D,2009,42(3):035103—035106.

    [18] Hu W D, Chen X S, Yin F, et al. Twodimensional transient simulations of drain lag and current collapse in GaNbased highelectronmobility transistors[J]. J. Appl. Phys.,2009,105(8):084502—084510.

    [19] Tanase C, Meijer E J, Blom P W M, et al. Unification of the Hole Transport in Polymeric FieldEffect Transistors and LightEmitting Diodes[J]. Phys. Rev. Lett.,2003,91(21):216601—216604.

    CHEN YuLu, HOU XiaoYuan, CEN Yan. Effect of doping concentration and disorder on the mobility of carriers in organic light emitting diodes[J]. Journal of Infrared and Millimeter Waves, 2011, 30(3): 271
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