Shi Yuxin, Wang Zhibin, Meng Ting, Yuan Ting, Ni Ruihao, Li Yunchao, Li Xiaohong, Zhang Yang, Tan Zhan'ao, Lei Shengbin, Fan Louzhen
Key Laboratory of Theoretical & Computational Photochemistry of Ministry of Education, College of Chemistry, Beijing Normal University, Beijing 100875, China.
State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, School of Renewable Energy, North China Electric Power University, Beijing 102206, China.
J Am Chem Soc. 2021 Nov 17;143(45):18941-18951. doi: 10.1021/jacs.1c07054. Epub 2021 Nov 6.
Carbon quantum dots (CQDs) have developed into prospective nanomaterials for next-generation lighting and displays due to their intrinsic advantages of high stability, low cost, and environmental friendliness. However, confined by the spin-forbidden nature of triplet state transitions, the highest theoretical value of external quantum efficiency (EQE) of fluorescent CQDs is merely 5%, which fundamentally limits their further application in electroluminescent light-emitting diodes (LEDs). Soluble phosphorescent CQDs offer a means of breaking the shackle to achieve efficient monochromatic electroluminescence, especially red emission, which is a pivotal constituent in full-color displays. Here, the synthesis of red (625 nm) phosphorescent carbon quantum dot organic frameworks (CDOFs) with a quantum yield of up to 42.3% and realization of high-efficiency red phosphorescent electroluminescent LEDs are reported. The LEDs based on the CDOFs exhibited a red emission with a maximum luminance of 1818 cd m and an EQE of 5.6%. This work explores the possibility of a new perspective for developing high-performance CQD-based electroluminescent LEDs.
碳量子点(CQDs)因其具有高稳定性、低成本和环境友好等固有优势,已发展成为用于下一代照明和显示的有前景的纳米材料。然而,受限于三重态跃迁的自旋禁戒特性,荧光碳量子点的外量子效率(EQE)的最高理论值仅为5%,这从根本上限制了它们在电致发光发光二极管(LED)中的进一步应用。可溶性磷光碳量子点提供了一种打破束缚以实现高效单色电致发光的方法,尤其是红色发射,而红色发射是全彩显示器中的关键组成部分。在此,报道了量子产率高达42.3%的红色(625 nm)磷光碳量子点有机框架(CDOFs)的合成以及高效红色磷光电致发光LED的实现。基于CDOFs的LED发出红色光,最大亮度为1818 cd m,EQE为5.6%。这项工作探索了从新视角开发高性能基于碳量子点的电致发光LED的可能性。