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Optimized Electrolyte Loading and Active Film Thickness for Sandwich Polymer Light-Emitting Electrochemical Cells

机译:用于夹层聚合物发光电化学电池的优化电解质负荷和活性膜厚度

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摘要

Effects of ion concentration and active layer thickness play a critical role on the performance of light-emitting electrochemical cells. Expanding on a pioneering materials system comprising the super yellow (SY) polymer and the electrolyte trimethylolpropane ethoxylate (TMPE)/Li+CF3SO3-, it is reported that a slightly lowered salt concentration and layer thickness result in a substantial efficiency increase, and that this increase is confined to a narrow concentration and thickness range. For a film thickness of 70 nm, a blend ratio SY:TMPE:Li+CF3SO3- = 1:0.075:0.0225, and a current of 7.7 mA cm(-2) the current efficacy is 11.6 cd A(-1), on a par with SY light-emitting diodes. The optimized salt content can be explained by increased exciton quenching at higher concentrations and hindered carrier injection and conduction at lower concentrations, while the optical dependence on the layer thickness is due to weak microcavity effects. A comprehensive optical modeling study is presented, which includes the doping-induced changes of the refractive indices and self-absorption losses due the emission-absorption overlap of intrinsic and doped SY. The analysis indicates either a thickness-independent emitter position (EP) close to the anode or a thickness-dependent EP, shifted to the cathode for increased thicknesses.
机译:离子浓度和有源层厚度的影响在发光电化学电池的性能上起着关键作用。在包括超黄色(SY)聚合物和电解质三羟甲基丙烷乙氧基化物(TMPE)/ Li + CF3SO 3的促进材料系统上膨胀,据报道,略微降低的盐浓度和层厚度升高,并且这增加被限制在窄浓度和厚度范围内。对于薄膜厚度为70nm,混合比SY:TMPE:Li + CF3SO3- = 1:0.075:0.0225,电流为7.7 mA cm(-2),目前的功效是11.6cd a(-1),开启与SY发光二极管的一个标准。优化的盐含量可以通过在较高浓度下增加的激子猝灭并在较低浓度下阻碍载流子注射和传导,而对层厚度的光学依赖性是由于微腔效应较弱。提出了一种综合的光学建模研究,包括掺杂诱导的折射率和自吸收损失的变化,因为固有型和掺杂SY的排放吸收重叠。该分析表明靠近阳极的厚度无关的发射极位置(EP)或厚度依赖于依赖的EP,移至阴极以增加厚度。

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  • 来源
    《Advanced Optical Materials 》 |2019年第3期| 1801278.1-1801278.8| 共8页
  • 作者单位

    Empa Swiss Fed Labs Mat Sci & Technol Lab Funct Polymers CH-8600 Dubendorf Switzerland|Ecole Polytech Fed Lausanne Inst Mat Sci & Engn Stn 12 CH-1015 Lausanne Switzerland;

    Empa Swiss Fed Labs Mat Sci & Technol Lab Funct Polymers CH-8600 Dubendorf Switzerland;

    Zurich Univ Appl Sci Inst Computat Phys Tech Str 9 CH-8401 Winterthur Switzerland|Fluxim AG Katharina Sulzer Pl 2 CH-8400 Winterthur Switzerland;

    Zurich Univ Appl Sci Inst Computat Phys Tech Str 9 CH-8401 Winterthur Switzerland;

    Fluxim AG Katharina Sulzer Pl 2 CH-8400 Winterthur Switzerland;

    Empa Nanoscale Mat Sci CH-8600 Dubendorf Switzerland;

    Empa Swiss Fed Labs Mat Sci & Technol Lab Funct Polymers CH-8600 Dubendorf Switzerland|Ecole Polytech Fed Lausanne Inst Mat Sci & Engn Stn 12 CH-1015 Lausanne Switzerland;

    Empa Swiss Fed Labs Mat Sci & Technol Lab Funct Polymers CH-8600 Dubendorf Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    electrolyte; LEC; light-emitting electrochemical cell; optical model; super yellow;

    机译:电解质;LEC;发光电化学电池;光学模型;超黄色;

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