材料科学
电致发光
光电子学
发光二极管
钙钛矿(结构)
量子点
色度
硫系化合物
二极管
显色指数
卤化物
单色
激子
量子效率
纳米技术
光学
物理
化学
图层(电子)
工程类
化学工程
量子力学
无机化学
作者
Jianfeng Zhang,Beitao Ren,Sunbin Deng,Jincheng Huang,Le Jiang,Dingjian Zhou,Xu‐Lin Zhang,Meng Zhang,Rongsheng Chen,Fion Sze Yan Yeung,Hoi Sing Kwok,Ping Xu,Guijun Li
标识
DOI:10.1002/adfm.201907074
摘要
Abstract Electroluminescent devices based on metal halide perovskites have attracted extensive attention owing to their high external quantum efficiency, excellent color purity, and inexpensive solution process. So far, extensive efforts have been made to improve the efficiency of the monochromatic perovskite light‐emitting diodes (LEDs). However, multicolor perovskite‐based LEDs are seldom studied. Here, an individual device capable of multicolor emission in response to the passage of external electric bias is demonstrated. With the rational design of the energy band alignment and control of the carrier transport property, color‐tunable electroluminescent devices based on inorganic halide perovskite and chalcogenide quantum‐dots are fabricated with a wide color tuning range, high color reversibility, and ultrafast color switching. The mechanism of chromaticity tuning is investigated and is explained by the shift of the exciton recombination zone with the driving voltage. The presented work will impact scientific communities by encouraging the manufacture of cost‐effective, high‐resolution, and full‐color displays and human‐centric lighting.
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