Wang Kun, Liu Ye, Wu Chaoxing, Li Dianlun, Lv Shanhong, Zhang Yongai, Zhou Xiongtu, Guo Tailiang
College of Physics and Information Engineering, Institute of Optoelectronic Technology, Fuzhou University, Fuzhou, 350108, China.
Fujian Science & Technology Innovation Laboratory for Optoelectronic Information of China, Fuzhou, 350108, China.
Sci Rep. 2020 May 15;10(1):8059. doi: 10.1038/s41598-020-65092-z.
Stable electroluminescence from micro-pixelated light-emitting diode (μLED) occurs when electrons and holes are continuously injected from external electrodes. Different from the general recognition, in this work, μLED works in an operation mode, namely, non-electrical contact and non-carrier injection mode, and can be 'wirelessly' lit up without external charge injection, which is different from the general recognition. Inherent holes and electrons in μLEDs can provide sufficient carriers for radiative recombination under alternating-current electric field. A possible model related to the diffusion of majority carrier and the drift of minority carrier in μLED was proposed, which is further confirmed by the employment of a 'carrier pump'. Finally, the intrinsic characteristics of the device-in-capacitor, namely, self-protection against electrical breakdown, were discussed. This work demonstrates a new device configuration and an alternative operating mode for μLED and provides a research manner to obtain advanced μLED-based technology.
当电子和空穴从外部电极持续注入时,微像素发光二极管(μLED)会产生稳定的电致发光。与一般认知不同的是,在这项工作中,μLED以一种工作模式运行,即非电接触和非载流子注入模式,并且无需外部电荷注入就能“无线”点亮,这与一般认知不同。μLED中固有的空穴和电子能够在交变电场下为辐射复合提供足够的载流子。提出了一个与μLED中多数载流子扩散和少数载流子漂移相关的可能模型,通过使用“载流子泵”进一步证实了该模型。最后,讨论了器件-电容器的固有特性,即对电击穿的自我保护。这项工作展示了一种新的器件配置和μLED的另一种运行模式,并为获得先进的基于μLED的技术提供了一种研究方式。