Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu, 215123, P. R. China.
Department of Electronic Engineering, Faculty of Engineering and Technology, University of Sindh, Allama I.I. Kazi Campus, Jamshoro, Sindh, 76080, Pakistan.
Adv Mater. 2023 Jun;35(25):e2208789. doi: 10.1002/adma.202208789. Epub 2023 May 1.
Small-molecule organic single crystals (SCs) with an inherent in-plane anisotropic nature enable direct linearly polarized light emission without the need for spatially separated polarizers and complex optical structures. However, the device performance is severely restricted by the starvation of appropriate SC emitters and the difficulty in the construction of efficient SC electroluminescence (EL) devices, leading to a low external quantum efficiency (EQE) of usually smaller than 1.5%. Here, highly efficient inherent linearly polarized light-emitting diodes (LP-LEDs) are demonstrated by exploiting 2,6-diphenylanthracene (DPA) SCs as intrinsically polarized emitters. The LP-LEDs exhibit a 2.5-fold enhanced maximum EQE of 3.38%, which approaches the theoretical limit for the DPA SC-based EL device and is the highest among organic SC-based LEDs reported thus far. More importantly, a high degree of polarization (DOP) up to 0.74 is achieved for the intrinsically polarized EL emission of the DPA SC-based LP-LEDs. By leveraging the highly efficient LP-LED, an interchip polarized optical communication system consisting of organic SCs is demonstrated for the first time. This work creates a solid foundation for the exploitation of a vast new library of small-molecule organic SCs for LP-LEDs and carries broad implications for polarized optics and relevant optoelectronic devices.
小分子有机单晶(SCs)具有固有面内各向异性,能够实现无需空间分离偏振器和复杂光学结构的直接线偏振光发射。然而,器件性能受到合适的 SC 发射器的供应短缺以及高效 SC 电致发光(EL)器件构建的困难的严重限制,导致外量子效率(EQE)通常低于 1.5%。在这里,通过利用 2,6-二苯基蒽(DPA)SCs 作为本征偏振发射器,展示了高效的固有线偏振发光二极管(LP-LEDs)。LP-LEDs 表现出 2.5 倍的最大 EQE 增强,达到 3.38%,接近基于 DPA SC 的 EL 器件的理论极限,并且是迄今为止报道的基于有机 SC 的 LED 中最高的。更重要的是,基于 DPA SC 的 LP-LED 的本征偏振 EL 发射实现了高达 0.74 的高偏振度(DOP)。通过利用高效的 LP-LED,首次展示了由有机 SC 组成的芯片间偏振光通信系统。这项工作为开发基于小分子有机 SC 的 LP-LED 奠定了坚实的基础,并为偏振光学和相关光电设备带来了广泛的影响。