Bright light-emitting diodes based on organometal halide perovskite

电致发光 光电子学 钙钛矿(结构) 材料科学 光致发光 量子效率 二极管 佩多:嘘 发光二极管 带隙 纳米技术 图层(电子) 化学 结晶学
作者
Zhi‐Kuang Tan,Reza Saberi Moghaddam,May Ling Lai,Pablo Docampo,Ruben Higler,Felix Deschler,Michael B. Price,Aditya Sadhanala,Luis Pazos,Daniel Credgington,Fabian C. Hanusch,Thomas Bein,Henry J. Snaith,Richard H. Friend
出处
期刊:Nature Nanotechnology [Springer Nature]
卷期号:9 (9): 687-692 被引量:3638
标识
DOI:10.1038/nnano.2014.149
摘要

Electroluminescence with relatively high radiance is observed from solution-processed diodes of organometal halide perovskites. Solid-state light-emitting devices based on direct-bandgap semiconductors have, over the past two decades, been utilized as energy-efficient sources of lighting. However, fabrication of these devices typically relies on expensive high-temperature and high-vacuum processes, rendering them uneconomical for use in large-area displays1,2. Here, we report high-brightness light-emitting diodes based on solution-processed organometal halide perovskites. We demonstrate electroluminescence in the near-infrared, green and red by tuning the halide compositions in the perovskite. In our infrared device, a thin 15 nm layer of CH3NH3PbI3–xClx perovskite emitter is sandwiched between larger-bandgap titanium dioxide (TiO2) and poly(9,9′-dioctylfluorene) (F8) layers, effectively confining electrons and holes in the perovskite layer for radiative recombination. We report an infrared radiance of 13.2 W sr−1 m−2 at a current density of 363 mA cm−2, with highest external and internal quantum efficiencies of 0.76% and 3.4%, respectively. In our green light-emitting device with an ITO/PEDOT:PSS/CH3NH3PbBr3/F8/Ca/Ag structure, we achieved a luminance of 364 cd m−2 at a current density of 123 mA cm−2, giving external and internal quantum efficiencies of 0.1% and 0.4%, respectively. We show, using photoluminescence studies, that radiative bimolecular recombination is dominant at higher excitation densities. Hence, the quantum efficiencies of the perovskite light-emitting diodes increase at higher current densities. This demonstration of effective perovskite electroluminescence offers scope for developing this unique class of materials into efficient and colour-tunable light emitters for low-cost display, lighting and optical communication applications.
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