Tang Ya-Han, Chiu Yi-Chan, Luo Dian, Lien Jiun-Yi, Yi Rong-Huei, Lin Ching-Hsuan, Yang Zu-Po, Lu Chin-Wei, Su Hai-Ching
Institute of Lighting and Energy Photonics, National Chiao Tung University, Tainan, 71150, Taiwan.
Center for Quantum Frontiers of Research & Technology (QFort), National Cheng Kung University, Tainan, 70101, Taiwan.
Chemistry. 2020 Oct 27;26(60):13668-13676. doi: 10.1002/chem.202001994. Epub 2020 Sep 28.
Solid-state white light-emitting electrochemical cells (LECs) show promising advantages of simple solution fabrication processes, low operation voltage, and compatibility with air-stable cathode metals, which are required for lighting applications. To date, white LECs based on ionic transition metal complexes (iTMCs) have shown higher device efficiencies than white LECs employing other types of materials. However, lower emission efficiencies of red iTMCs limit further improvement in device performance. As an alternative, efficient red CdZnSeS/ZnS core/shell quantum dots were integrated with a blue iTMC to form a hybrid white LEC in this work. By achieving good carrier balance in an appropriate device architecture, a peak external quantum efficiency and power efficiency of 11.2 % and 15.1 lm W, respectively, were reached. Such device efficiency is indeed higher than those of the reported white LECs based on host-guest iTMCs. Time- and voltage-dependent electroluminescence (EL) characteristics of the hybrid white LECs were studied by means of the temporal evolution of the emission-zone position extracted by fitting the simulated and measured EL spectra. The working principle of the hybrid white LECs was clarified, and the high device efficiency makes potential new white-emitting devices suitable for solid-state lighting technology possible.
固态白光发光电化学电池(LEC)展现出了诸多优势,如溶液制备工艺简单、工作电压低以及与适用于照明应用的空气稳定阴极金属具有兼容性。迄今为止,基于离子型过渡金属配合物(iTMC)的白色LEC比采用其他类型材料的白色LEC具有更高的器件效率。然而,红色iTMC较低的发光效率限制了器件性能的进一步提升。作为替代方案,在本工作中,将高效的红色CdZnSeS/ZnS核壳量子点与蓝色iTMC集成,以形成混合白色LEC。通过在合适的器件结构中实现良好的载流子平衡,分别达到了11.2%的峰值外量子效率和15.1 lm W的功率效率。这种器件效率确实高于已报道的基于客体-主体iTMC的白色LEC。通过拟合模拟和测量的电致发光(EL)光谱提取发射区位置的时间演化,研究了混合白色LEC的时间和电压相关EL特性。阐明了混合白色LEC的工作原理,并且高器件效率使得适用于固态照明技术的新型潜在白色发光器件成为可能。