Key Laboratory of Materials Physics of Ministry of Education, Department of Physics and Engineering, Zhengzhou University , Daxue Road 75, Zhengzhou 450052, China.
State Key Laboratory on Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University , Qianjin Street 2699, Changchun 130012, China.
ACS Nano. 2018 Feb 27;12(2):1462-1472. doi: 10.1021/acsnano.7b07856. Epub 2018 Jan 16.
Recently, a pressing requirement of solid-state lighting sources with high performance and low cost has motivated increasing research in metal halide perovskites. However, the relatively low emission efficiency and poor operation stability of perovskite light-emitting diodes (LEDs) are still critical drawbacks. In this study, a strategy of solution-processed all-inorganic heterostructure was proposed to overcome the emission efficiency and operation stability issues facing the challenges of perovskite LEDs. Solution-processed n-ZnO nanoparticles and p-NiO are used as the carrier injectors to fabricate all-inorganic heterostructured CsPbBr quantum dot LEDs, and a high-efficiency green emission is achieved with maximum luminance of 6093.2 cd/m, external quantum efficiency of 3.79%, and current efficiency of 7.96 cd/A. More importantly, the studied perovskite LEDs possess a good operation stability after a long test time in air ambient. Typically, the devices can endure a high humidity (75%, 12 h) and a high working temperature (393 K, three heating/cooling cycles) even without encapsulation, and the operation stability is better than any previous reports. It is anticipated that this work will provide an effective strategy for the fabrication of high-performance perovskite LEDs with good stability under ambient and harsh conditions, making practical applications of such LEDs a real possibility.
最近,对高性能、低成本的固态照明光源的迫切需求促使人们对卤化金属钙钛矿进行了越来越多的研究。然而,钙钛矿发光二极管(LED)的相对较低的发射效率和较差的操作稳定性仍然是关键的缺点。在本研究中,提出了一种溶液处理的全无机异质结构策略,以克服面临的挑战的钙钛矿 LED 的发射效率和操作稳定性问题。采用溶液处理的 n-ZnO 纳米粒子和 p-NiO 作为载流子注入剂来制备全无机异质结构的 CsPbBr 量子点 LED,并实现了高效率的绿色发射,最大亮度为 6093.2 cd/m,外量子效率为 3.79%,电流效率为 7.96 cd/A。更重要的是,研究的钙钛矿 LED 在空气环境中的长时间测试后具有良好的操作稳定性。通常,即使没有封装,器件也可以承受高湿度(75%,12 小时)和高工作温度(393 K,三个加热/冷却循环),并且操作稳定性优于任何以前的报告。预计这项工作将为在环境和恶劣条件下制造高性能、稳定性好的钙钛矿 LED 提供一种有效的策略,使这类 LED 的实际应用成为可能。