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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Tailoring balance of carrier mobilities in solid-state light-emitting electrochemical cells by doping a carrier trapper to enhance device efficiencies
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Tailoring balance of carrier mobilities in solid-state light-emitting electrochemical cells by doping a carrier trapper to enhance device efficiencies

机译:通过掺杂载流子俘获器来提高器件效率,从而调整固态发光电化学电池中载流子迁移率的平衡

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We demonstrate the improving balance of carrier mobilities in neat-film light-emitting electrochemical cells (LECs) utilizing a cationic transition metal complex (CTMC) as the emissive material and a cationic near-infrared laser dye as the carrier trapper. This low-gap carrier trapper is judiciously chosen such that a significant energy offset in the highest occupied molecular orbital (HOMO) levels between the CTMC and the carrier trapper impedes hole transport in the emissive layers while similar lowest unoccupied molecular orbital (LUMO) levels of these two materials result in relatively unaffected electron transport. Since the CTMC neat films would intrinsically exhibit characteristics of preferred transport of holes, the balance of carrier mobilities would be improved by doping such carrier trapper. Electroluminescent measurements show that the peak external quantum efficiency (EQE) and the peak power efficiency of the neat-film LECs doped with the carrier trapper reach 12.75% and 28.70 lm W~(-1), respectively. These device efficiencies represent a 1.4 times enhancement as compared to those of the undoped neat-film LECs and approach the upper limit of EQE (~15%) that one would expect from the photoluminescence quantum yield of the emissive layer (~0.75) and an optical out-coupling efficiency of ~20% from a typical layered device structure, consequently indicating superior balance of carrier mobilities in such a doped emissive layer. These results confirm that the balance of carrier mobilities in the CTMC neat films would be improved by doping a proper carrier trapper and this technique offers a general approach for optimizing device efficiencies of CTMC-based neat-film LECs.
机译:我们演示了利用阳离子过渡金属络合物(CTMC)作为发光材料和阳离子近红外激光染料作为载流子捕集器,在整片发光电化学电池(LEC)中提高载流子迁移率的平衡。明智地选择此低能隙载流子捕获器,以使CTMC和载流子捕获器之间的最高占据分子轨道(HOMO)能级发生明显的能量偏移,从而阻止了发射层中的空穴传输,而类似的最低空载分子轨道(LUMO)能级这两种材料导致相对不受影响的电子传输。由于CTMC纯净的膜将固有地表现出优选的空穴传输特性,因此通过掺杂这种载流子俘获器将改善载流子迁移率的平衡。电致发光测量结果表明,掺杂载流子的纯薄膜LEC的峰值外部量子效率(EQE)和峰值功率效率分别达到12.75%和28.70 lm W〜(-1)。与未掺杂的纯膜LEC相比,这些器件的效率提高了1.4倍,接近EQE的上限(〜15%),可从发光层的光致发光量子产率(〜0.75)和与典型的分层器件结构相比,光输出耦合效率约为20%,因此表明在这种掺杂的发射层中载流子迁移率具有出色的平衡。这些结果证实,通过掺杂适当的载流子捕获器,将改善CTMC纯膜中载流子迁移率的平衡,该技术为优化基于CTMC的纯膜LEC的器件效率提供了一种通用方法。

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