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Scrutinizing Design Principles toward Efficient, Long-Term Stable Green Light-Emitting Electrochemical Cells

机译:审视高效,长期稳定的绿色发光电化学电池的设计原理

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Enhancing the efficiency and lifetime of light emitting electrochemical cells (LEC) is the most important challenge on the way to energy efficient lighting devices of the future. To avail this, emissive Ir(III) complexes with fluoro-substituted cyclometallated ligands and electron donating groups (methyl and tert-butyl)-substituted diimine ancillary ((NN)-N-boolean AND) ligands and their associated LEC devices are studied. Four different complexes of general composition [Ir(4ppy)(2)((NN)-N-boolean AND)][PF6] (4Fppy = 2-(4-fluorophenyl)pyridine) with the (NN)-N-boolean AND ligand being either 2,2'-bipyridine (1), 4.4'-dimethyl-2,2'-bipyridine (2), 5.5'-dimethyl-2,2'-bipyridine (3), or 4.4'-di-tert-butyl-2,2'-bipyridine (4) are synthesized and characterized. All complexes emit in the green region of light with emission maxima of 529-547 nm and photoluminescence quantum yields in the range of 50.6%-59.9%. LECs for electroluminescence studies are fabricated based on these complexes. The LEC based on (1) driven under pulsed current mode demonstrated the best performance, reaching a maximum luminance of 1605 cd m(-2) resulting in 16 cd A(-1) and 8.6 lm W-1 for current and power efficiency, respectively, and device lifetime of 668 h. Compared to this, LECs based on (3) and (4) perform lower, with luminance and lifetime of 1314 cd m(-2), 45.7 h and 1193 cd m(-2), 54.9 h, respectively. Interestingly, in contrast to common belief, the fluorine content of the Ir-iTMCs does not adversely affect the LEC performance, but rather electron donating substituents on the (NN)-N-boolean AND ligands are found to dramatically reduce both performance and stability of the green LECs. In light of this, design concepts for green light emitting electrochemical devices have to be reconsidered.
机译:增强发光电化学电池(LEC)的效率和寿命是未来通往节能照明设备的最重要挑战。为此,研究了具有氟取代的环金属化配体和给电子基团(甲基和叔丁基)取代的二亚胺辅助((NN)-N-布尔AND)配体的发光Ir(III)配合物及其相关的LEC器件。通式[Ir(4ppy)(2)(((NN)-N-布尔AND)]] [PF6](4Fppy = 2-(4-氟苯基)吡啶)与(NN)-N-布尔AND的四种不同复合物配体是2,2'-联吡啶(1),4.4'-二甲基-2,2'-联吡啶(2),5.5'-二甲基-2,2'-联吡啶(3)或4.4'-二叔丁基合成并表征了-丁基-2,2'-联吡啶(4)。所有复合物均在绿色光区域中发射,最大发射波长为529-547 nm,光致发光的量子产率为50.6%-59.9%。基于这些配合物制备了用于电致发光研究的LEC。基于(1)在脉冲电流模式下驱动的LEC表现出最佳性能,达到最大亮度1605 cd m(-2),导致16 cd A(-1)和8.6 lm W-1的电流和功率效率,器件寿命分别为668小时。与此相比,基于(3)和(4)的LEC表现较低,亮度和寿命分别为1314 cd m(-2),45.7 h和1193 cd m(-2),54.9 h。有趣的是,与通常的看法相反,Ir-iTMC的氟含量不会对LEC性能产生不利影响,而是发现(NN)-N-布尔AND配体上的给电子取代基会极大地降低其性能和稳定性。绿色LEC。鉴于此,必须重新考虑用于发射绿色光的电化学装置的设计概念。

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  • 来源
    《Advanced Functional Materials 》 |2017年第17期| 1605588.1-1605588.8| 共8页
  • 作者单位

    OSRAM GmbH, CI ANM EU, Berliner Allee 65, D-86153 Augsburg, Germany|Ruhr Univ Bochum, Fak Chem & Biochem, Anorgan Chem Mat Engn & Characterizat 3, D-44780 Bochum, Germany|Ames Lab, Crit Mat Inst, Ames, IA 50011 USA;

    OSRAM OLED GmbH, Wernerwerkstr 2, D-93049 Regensburg, Germany;

    Ruhr Univ Bochum, Fak Chem & Biochem, Anorgan Chem Mat Engn & Characterizat 3, D-44780 Bochum, Germany|Ames Lab, Crit Mat Inst, Ames, IA 50011 USA|Iowa State Univ, Dept Mat Sci & Engn, Ames, IA 50011 USA;

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