High-efficiency perovskite–polymer bulk heterostructure light-emitting diodes

钙钛矿(结构) 发光二极管 光电子学 电致发光 量子效率 材料科学 光致发光 异质结 二极管 自发辐射 载流子 光学 图层(电子) 化学 物理 纳米技术 激光器 结晶学
作者
Baodan Zhao,Sai Bai,Vincent Kim,Robin Lamboll,Ravichandran Shivanna,Florian Auras,Johannes M. Richter,Le Yang,Linjie Dai,Mejd Alsari,Xiao‐Jian She,Lusheng Liang,Jiangbin Zhang,Samuele Lilliu,Peng Gao,Henry J. Snaith,Jianpu Wang,Neil C. Greenham,Richard H. Friend,Dawei Di
出处
期刊:Nature Photonics [Nature Portfolio]
卷期号:12 (12): 783-789 被引量:453
标识
DOI:10.1038/s41566-018-0283-4
摘要

Perovskite-based optoelectronic devices have gained significant attention due to their remarkable performance and low processing cost, particularly for solar cells. However, for perovskite light-emitting diodes (LEDs), non-radiative charge carrier recombination has limited electroluminescence (EL) efficiency. Here we demonstrate perovskite-polymer bulk heterostructure LEDs exhibiting record-high external quantum efficiencies (EQEs) exceeding 20%, and an EL half-life of 46 hours under continuous operation. This performance is achieved with an emissive layer comprising quasi-2D and 3D perovskites and an insulating polymer. Transient optical spectroscopy reveals that photogenerated excitations at the quasi-2D perovskite component migrate to lower-energy sites within 1 ps. The dominant component of the photoluminescence (PL) is primarily bimolecular and is characteristic of the 3D regions. From PL quantum efficiency and transient kinetics of the emissive layer with/without charge-transport contacts, we find non-radiative recombination pathways to be effectively eliminated. Light outcoupling from planar LEDs, as used in OLED displays, generally limits EQE to 20-30%, and we model our reported EL efficiency of over 20% in the forward direction to indicate the internal quantum efficiency (IQE) to be close to 100%. Together with the low drive voltages needed to achieve useful photon fluxes (2-3 V for 0.1-1 mA/cm2), these results establish that perovskite-based LEDs have significant potential for light-emission applications.
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