Yi Rong-Huei, Lo Chieh-Liang, Luo Dian, Lin Chien-Hsiang, Weng Shu-Wen, Lu Chin-Wei, Liu Shun-Wei, Chang Chih-Hao, Su Hai-Ching
Department of Applied Chemistry, Providence University, Taichung 43301, Taiwan.
Institute of Lighting and Energy Photonics, National Chiao Tung University, Tainan 71150, Taiwan.
ACS Appl Mater Interfaces. 2020 Mar 25;12(12):14254-14264. doi: 10.1021/acsami.9b23300. Epub 2020 Mar 10.
Light-emitting electrochemical cells (LECs) show high technical potential for display and lighting utilizations owing to the superior properties of solution processability, low operation voltage, and employing inert cathodes. For maximizing the device efficiency, three approaches including development of efficient emissive materials, optimizing the carrier balance, and maximizing the light extraction have been reported. However, most reported works focused on only one of the three optimization approaches. In this work, a combinational approach is demonstrated to optimize the device efficiency of LECs. A sophisticatedly designed yellow complex exhibiting a superior steric hindrance and a good carrier balance is proposed as the emissive material of light-emitting electrochemical cells and thus the external quantum efficiency (EQE) is up to 13.6%. With an improved carrier balance and reduced self-quenching by employing the host-guest strategy, the device EQE can be enhanced to 16.9%. Finally, a diffusive layer embedded between the glass substrate and the indium-tin-oxide layer is utilized to scatter the light trapped in the layered device structure, and consequently, a high EQE of 23.7% can be obtained. Such an EQE is impressive and consequently proves that the proposed combinational approach including adopting efficient emissive materials, optimizing the carrier balance, and maximizing the light extraction is effective in realizing highly efficient LECs.
发光电化学电池(LEC)因其具有溶液可加工性、低工作电压以及采用惰性阴极等优异特性,在显示和照明应用方面展现出巨大的技术潜力。为了使器件效率最大化,已报道了三种方法,包括开发高效发光材料、优化载流子平衡以及最大化光提取。然而,大多数已报道的工作仅关注这三种优化方法中的一种。在这项工作中,展示了一种组合方法来优化LEC的器件效率。提出了一种精心设计的黄色配合物,其具有优异的空间位阻和良好的载流子平衡,作为发光电化学电池的发光材料,因此外量子效率(EQE)高达13.6%。通过采用主客体策略改善载流子平衡并减少自猝灭,器件EQE可提高到16.9%。最后,在玻璃基板和铟锡氧化物层之间嵌入一个扩散层,用于散射被困在层状器件结构中的光,从而可获得23.7%的高EQE。如此高的EQE令人印象深刻,从而证明了所提出的包括采用高效发光材料、优化载流子平衡以及最大化光提取的组合方法在实现高效LEC方面是有效的。